CHRIST (Deemed to University), Bangalore

DEPARTMENT OF MECHANICAL AND AUTOMOBILE ENGINEERING

School of Engineering and Technology






Syllabus for
MTech (Machine Design)
Academic Year  (2024)

 
        

  

Assesment Pattern

ASSESSMENT RULES

 

Assessment of Project Work(Phase I)

§ Continuous Internal Assessment:100 Marks

¨ Presentation assessed by Panel Members

¨ Assessment by the Guide

¨ Project  Progress Reports

 

Assessment of Project Work(Phase II) and Dissertation

§ Continuous Internal Assessment:200 Marks

¨ Presentation assessed by Panel Members

¨ Assessment by the Guide

¨ Project  Progress Reports

¨ Paper presentation in National/International conference or in Journal publications or at least acceptance letter is mandatory  

§ End Semester Examination:100 Marks

¨ Viva Voce

¨ Demonstration

¨ Project Report

§ Dissertation (Exclusive assessment of Project Report): 100 Marks

¨ Internal Review : 50 Marks

¨ External Review : 50 Marks

 

Assessment of Internship

 

30 Internship days at Industry/Research Laboratories is mandatory and a report should be submitted with certificate before IV semester.

 

14.  QUESTION PAPER PATTERN:

 

End Semester Examination (ESE):

Theory Papers:

The ESE is conducted for 100 marks of 3 hours duration.

The syllabus for the theory papers is divided into FIVE units and each unit carries equal weightage in terms of marks distribution.

Question paper pattern is as follows.

Two full questions with either or choice, will be drawn from each unit. Each question carries 20 marks. There could be a maximum of three sub divisions in a question. The emphasis on the questions is broadly based on the following criteria:

50 % - To test the objectiveness of the concept

30 % - To test the analytical skill of the concept

20 % - To test the application skill of the concept

Laboratory / Practical Papers:

  The ESE is conducted for 50 marks of 3 hours duration. Writing, Execution and Viva – voce will carry weightage of 20, 20 and 10 respectively.

Mid Semester Examination (MSE):

Theory Papers:

· The MSE is conducted for 50 marks of 2 hours duration.

· Question paper pattern; Five out of Six questions have to be answered. Each question carries 10 marks.

Laboratory / Practical Papers:

The MSE is conducted for 50 marks of 2 hours duration. Writing, Execution and Viva – voce will carry weightage of 20, 20 and 10 respectively.

Holistic Education:

   End Semester Examination          25 Marks

   Participation             25 Marks

   Total 50 Marks

Examination And Assesments

Assessment is based on the performance of the student throughout the semester.

Assessment of each paper

· Continuous Internal Assessment (CIA) for Theory papers: 50% (50 marks out of 100 marks)

· End Semester Examination(ESE) : 50% (50 marks out of 100 marks)

Components of the CIA

CIA I: Assignments/Open book test/Seminar: 10 marks

CIA II:  Mid Semester Examination (Theory) : 25 marksCIA III: Quizzes/Seminar/Case Studies/Project Work   : 10 marks

Attendance: 05 marks

Total: 50 marks

 

For subjects having practical as part of the subject

End semester practical examination: 25 marks

Records: 05 marks

Mid semester examination: 10 marks

Class work: 10 marks

Total: 50 marks

Department Overview:

The Mechanical Engineering Department is equipped to meet the present day technological advances and to meet the industrial requirements matching with the global standards. The four year course in mechanical Engineering is designed to give the student the necessary training in access and use of most recent technologies. The department has state of the art laboratories through which practical knowledge necessary for the present day industrial applications is provided.Workshops with latest equipment, computer-aided engineering are provided to help students access latest developments in the field. Blend of fundamental theoretical knowledge with hands on experiential learning Outcome based education assisted by industry integration. Dynamic curriculum structure provides a conducive learning ambience.

Mission Statement:

VISION OF DEPARTMENT Develop Mechanical and Automobile engineering graduates to be successful in chosen professional career with innovative academic processes for the overall development. MISSION STATEMENT 1.To provide excellent academic ambience in curricular co-curricular and extracurricular initiatives, facilities and teaching-learning experience. 2.To nurture holistic development of individuals. 3.To imbibe professional ethics driven by a sense of moral responsibility committed to the service to society

Introduction to Program:

Started in the year 2012-13, The curriculum is designed to make the programme more industry oriented and research focused. Many software programmes are made available in the department which are of industry demand and research enabling. Students are provided with an opportunity to spend one full year at industry for their projects. Student would be completing this programme in four semesters, where in the last semester may be spent either of the two available alternatives, namely, Dissertation and Industry problem. This program is intended to give a penetrating professional experience in one's own discipline or in many other traditional areas of Engineering. . Specialized faculty in Machine Design with industry experience . State of the art software assisted learning. . Mandatory Research publications during the course.

Program Objective:

Programme Outcome/Programme Learning Goals/Programme Learning Outcome:

PO1: Apply the knowledge of mathematics, science, engineering fundamentals, and an engineering specialization to the solution of complex engineering problems.

PO2: Identify, formulate, review research literature, and analyze complex engineering problems reaching substantiated conclusions using first principles of mathematics, natural sciences, and engineering sciences.

PO3: Design solutions for complex engineering problems and design system components or processes that meet the specified needs with appropriate consideration for the public health and safety, and the cultural, societal, and environmental considerations.

PO4: Use research-based knowledge and research methods including design of experiments, analysis and interpretation of data, and synthesis of the information to provide valid conclusions.

PO5: Create, select, and apply appropriate techniques, resources, and modern engineering and IT tools including prediction and modeling to complex engineering activities with an understanding of the limitations.

PO6: Apply reasoning informed by the contextual knowledge to assess societal, health, safety, legal and cultural issues and the consequent responsibilities relevant to the professional engineering practice.

PO7: Understand the impact of the professional engineering solutions in societal and environmental contexts, and demonstrate the knowledge of, and need for sustainable development.

PO8: Apply ethical principles and commit to professional ethics and responsibilities and norms of the engineering practice.

PO9: Function effectively as an individual, and as a member or leader in diverse teams, and in multidisciplinary settings.

PO10: Communicate effectively on complex engineering activities with the engineering community and with society at large, such as, being able to comprehend and write effective reports and design documentation, make effective presentations, and give and receive clear instructions.

PO11: Demonstrate knowledge and understanding of the engineering and management principles and apply these to one?s own work, as a member and leader in a team, to manage projects and in multidisciplinary environments.

PO12: Recognize the need for, and have the preparation and ability to engage in independent and life-long learning in the broadest context of technological change.

MTAC123 - VALUE EDUCATION (2024 Batch)

Total Teaching Hours for Semester:15
No of Lecture Hours/Week:1
Max Marks:0
Credits:0

Course Objectives/Course Description

 

Course intends to highlight the value of education and self- development which would enable students to imbibe good values and understand the importance of character

Learning Outcome

CO1: Understand the importance of self-development

CO2: Understand importance of Human values

CO3: Understand the need for holistic development of personality

Unit-1
Teaching Hours:5
Values and Self-Development
 

Social values and individual attitudes, Work ethics, Indian vision of humanism, Moral and non- moral valuation. Standards and principles. Value judgements

Unit-2
Teaching Hours:2
Importance of Cultivation of Values
 

Sense of duty. Devotion, Self-reliance. Confidence, Concentration, Truthfulness, Cleanliness, Honesty, Humanity. Power of faith, National Unity, Patriotism. Love for nature , Discipline

Unit-3
Teaching Hours:8
Personality and Behaviour Development
 

Soul and Scientific attitude, Positive Thinking. Integrity and discipline, Punctuality, Love and Kindness, Avoid fault Thinking, Free from anger, Dignity of labour, Universal brotherhood and religious tolerance, True friendship, Happiness Vs suffering, love for truth, Aware of self-destructive habits, Association and Cooperation, Doing best for saving nature, Character and Competence –Holy books vs Blind faith, Self-management and Good health, Science of reincarnation, Equality, Nonviolence ,Humility, Role of Women, all religions and same message, Mind your Mind, Self-control, Honesty, Studying effectively

Text Books And Reference Books:

 

Chakroborty, S.K. “Values and Ethics for organizations Theory and practice”, Oxford University Press, New Delhi, 1999

Essential Reading / Recommended Reading

 

Chakraborty S K, "Ethics in Management: Vedantic Perspectives", Oxford University Press, New Delhi, India, 1997

 

Evaluation Pattern

Audit course

MTAC127 - PERSONALITY DEVELOPMENT THROUGH LIFE ENHANCEMENT SKILLS (2024 Batch)

Total Teaching Hours for Semester:30
No of Lecture Hours/Week:2
Max Marks:0
Credits:00

Course Objectives/Course Description

 

1. To learn to achieve the highest goal happily

2. To become a person with stable mind, pleasing personality and determination

3. To awaken wisdom in students 

Learning Outcome

CO1: The study of Shrimad-Bhagwad-Geeta will help the student in developing his personality and achieve the highest goal in life

CO2: The person who has studied Geeta will lead the nation and mankind to peace and prosperity

CO3: The study of Neetishatakam will help in developing the versatile personalities of students.

Unit-1
Teaching Hours:8
Unit-1
 

Neetisatakam-Holistic development of personality  Verses- 19,20,21,22 (wisdom)  Verses- 29,31,32 (pride & heroism)  Verses- 26,28,63,65 (virtue)  Verses- 52,53,59 (dont’s)  Verses- 71,73,75,78 (do’s) 

Unit-2
Teaching Hours:8
Unit-2
 

 Approach to day to day work and duties.  Shrimad BhagwadGeeta: Chapter 2-Verses 41, 47,48,  Chapter 3-Verses 13, 21, 27, 35, Chapter 6-Verses 5,13,17, 23, 35,  Chapter 18-Verses 45, 46, 48.

Unit-3
Teaching Hours:8
Unit-3
 

 Statements of basic knowledge.  Shrimad BhagwadGeeta: Chapter2-Verses 56, 62, 68  Chapter 12 -Verses 13, 14, 15, 16,17, 18  Personality of Role model. Shrimad BhagwadGeeta: Chapter2-Verses 17, Chapter 3-Verses 36,37,42,  Chapter 4-Verses 18, 38,39  Chapter18 – Verses 37,38,63 

Text Books And Reference Books:

1. “Srimad Bhagavad Gita” by Swami SwarupanandaAdvaita Ashram (Publication Department), Kolkata

2. Bhartrihari’s Three Satakam (Niti-sringar-vairagya) by P.Gopinath, Rashtriya Sanskrit Sansthanam, New Delhi. 

Essential Reading / Recommended Reading

1. “Srimad Bhagavad Gita” by Swami SwarupanandaAdvaita Ashram (Publication Department), Kolkata

2. Bhartrihari’s Three Satakam (Niti-sringar-vairagya) by P.Gopinath, Rashtriya Sanskrit Sansthanam, New Delhi. 

Evaluation Pattern

Mandatory learning course

MTMC121 - RESEARCH METHODOLOGY AND IPR (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To understand some basic concepts of research and its methodologies.

•To identify appropriate research topics and developing hypothesis. 

•To select and define appropriate research problem and parameters.

•To organize and conduct research/project in a more appropriate manner.

•To enable the students to imbibe and internalize the Values and Ethical Behaviour in the personal and Professional lives.

•To discuss the importance of intellectual property rights and IPR law. 

 

Learning Outcome

CO1: To develop an understanding of the basic framework of the research process and techniques. {L2}

CO2: To identify various sources of information for literature review and data collection. {L4}

CO3: To appreciate the components of scholarly writing and evaluate its quality {L6}

CO4: To develop ethical behavior in all situations. {L2}

CO5: To understand Trademark, Copyright and Patent Laws. {L2}

Unit-1
Teaching Hours:9
Research methodology
 

Research methodology – definition and significance, Types of research – exploratory research, conclusive research, modelling research, algorithmic research, casual research, theoretical and empirical research, cross-sectional and time series research. Research process- steps, research problems, objectives, characteristics, hypothesis and research in an evolutionary perspective

 

Unit-1
Teaching Hours:9
Research design
 

Research design- definition, types –descriptive and experimental, validity and reliability of instrument, Validity of findings- internal and external validity, Variables in Research, types of data – primary and secondary data, methods of a data collection for scientific and business research, experiments, construction and validation of questionnaire, measurement and scaling. 

Unit-2
Teaching Hours:9
Hypothesis testing
 

Testing of hypotheses concerning means (one mean and difference between two means – one tailed and two tailed tests), concerning variance _ one tailed Chi-square test

Unit-2
Teaching Hours:9
Sampling methods
 

Probability sampling methods – simple random sampling with replacement and without replacement, stratified sampling, cluster sampling. Non-probability sampling method – convenience sampling, judgment sampling, quota sampling

Unit-3
Teaching Hours:9
Report writing
 

Report writing – types of report, guidelines to write report, typing instruction, need of summary, importance of language in the preparation of research report, oral presentation. Recording the findings of research – publication- contents to meet the journals standard – impact factor – citation and citation index, policy on academic honesty and integrity – academics cheating and plagiarism. Opportunities to carry out research projects with funding/assistance from various Government agencies.

Unit-4
Teaching Hours:9
INTRODUCTION TO INTELLECTUAL PROPERTY
 

Multinational corporations- Environmental ethics- Computer ethics and Weapons developments. Meaning and Types of Intellectual Property, Intellectual Property. Law Basics, Agencies responsible for intellectual property registration, International Organizations, Agencies and Treaties, Importance of Intellectual Property Rights.

Introduction, Meaning of Patent Law, Rights under Federal Law, United States patent and Trademark Office, Patentability, Design Patents, Plants patents, Double Patenting.

 

Unit-5
Teaching Hours:9
FOUNDATIONS OF COPYRIGHTS LAW AND PATENT LAW
 

Meaning of Copyrights, Common Law rights and Rights under the 1976 copyright Act, Recent developments of the Copyright Act, The United States Copyright Office.

Unit-5
Teaching Hours:9
FOUNDATIONS OF TRADEMARKS
 

Meaning of Trademarks, Purpose and Functions of Trademarks, types of Marks, Acquisition of Trademark rights, Common Law rights, Categories of Marks, Trade names and Business Name, Protectable Matter, Exclusions from Trademark Protection

Text Books And Reference Books:

T1.Garg, B.L, Karadia R, Agarwal F, and Agarwal, “An introduction to Research Methodology”, RBSA Publishers, 2002.

T2.Kothari C.R, “Research Methodology: Methods and Techniques”, New Age International, 1990.

T3.Mike Martin and Roland Schinzinger “Ethics in Engineering”, TMH, 2009.

T4.Deborah E. Bouchoux, “Intellectual Property Rights”, Cengage 2005.

 

Essential Reading / Recommended Reading

R1.Sinha, S.C and Dhiman A.K, “Research Methodology”, 2nd volume, Ess Publications, 2002.

R2.Trochim W.M.K, “Research Methods: the concise knowledge base”, Atomic Dog Publishing, 2005. 

R3.Donald R. Cooper and Pamela S. Schindler, business Research Methods, 9th edition, Tata Mcgraw Hill, 2006

R4.Jayashree Suresh & B.S.Raghavan “Human values and Professional Ethics”, S. Chand, 2009.

R5.Govindarajan, Natarajan and Senthilkumar “Engineering Ethics”, PHI:009.

R6.Nagarajan “A Text Book on Professional ethics and Human values”, New Age International, 2009.

R7.Charles & Fleddermann “Engineering Ethics”, Pearson, 2009.

R8.Rachana Singh Puri and Arvind Viswanathan, I.K.”Practical Approach to Intellectual Property rights”, International Publishing House, New Delhi. 2010.

R9.A.B.Rao “Business Ethics and Professional Values”, Excel, 2009.

 

Evaluation Pattern

CIA-50

ESE-50

 

MTME131 - ADVANCED DESIGN OF MECHANICAL SYSTEM (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To facilitate the students to appreciate the design function in machine elements and understand the role of failure prevention analysis in mechanical design.

•To be able to estimate the fatigue life estimation using stress-life approach and strain life approach.

•To understand the significance of statistical aspects in fatigue, LEFM, fatigue from variable amplitude loading etc.

•To impart the knowledge on various aspects of surface failure and dynamic contact stresses.  

•The course aims at enumerating the theoretical and practical aspects of design process.

 

Learning Outcome

CO1: Analyse the different types of failure modes and be able to judge which criterion is to be applied in which situation. { L2}

CO2: Discuss the overview of stress- life and strain life approach to understand the fatigue behaviour of materials. {L2 }

CO3: Explain the linear elastic behavior in fracture of materials and understand the statistical aspects of fatigue. { L3}

CO4: Describe the various counting methods, damage theories used in the fatigue design from variable amplitude loading. { L3}

CO5: Classify different types of wear and illustrate the various surface failures. { L3}

Unit-1
Teaching Hours:9
INTRODUCTION
 

Role of failure prevention analysis in mechanical design, Modes of mechanical failure, Review of failure theories for ductile and brittle materials including Mohr’s theory and modified Mohr’s theory, Numerical examples. 

Unit-1
Teaching Hours:9
FATIGUE OF MATERIALS
 

Introductory concepts, High cycle and low cycle fatigue, Fatigue design models, Fatigue design methods, Fatigue design criteria, Fatigue testing, Test methods and standard test specimens, Fatigue fracture surfaces and macroscopic features, Fatigue mechanisms and microscopic features.

Unit-2
Teaching Hours:9
STRESS-LIFE (S-N) APPROACH
 

S-N curves, Statistical nature of fatigue test data, General S-N behavior, Mean stress effects, Different factors influencing S-N behavior, S-N curve representation and approximations, Constant life diagrams, Fatigue life estimation using S-N approach

Unit-2
Teaching Hours:9
STRAIN-LIFE(Ε-N)APPROACH
 

Monotonic stress-strain behavior ,Strain controlled test methods ,Cyclic stress-strain behavior ,Strain based approach to life estimation, Determination of strain life fatigue properties, Mean stress effects, Effect of surface finish, Life estimation by ε-N approach.

Unit-3
Teaching Hours:9
LEFM APPROACH
 

LEFM concepts, Crack tip plastic zone, Fracture toughness, Fatigue crack growth, Mean stress effects, Crack growth life estimation. 

Unit-3
Teaching Hours:9
STATISTICAL ASPECTS OF FATIGUE
 

Definitions and quantification of data scatter, Probability distributions, Tolerance limits, Regression analysis of fatigue data, Reliability analysis, Problems using the Weibull distribution.

Unit-4
Teaching Hours:9
FATIGUE FROM VARIABLE AMPLITUDE LOADING
 

Spectrum loads and cumulative damage, Damage quantification and the concepts of damage fraction and accumulation, Cumulative damage theories, Load interaction and sequence effects, Cycle counting methods, Life estimation using stress life approach.

Unit-5
Teaching Hours:9
SURFACE FAILURE
 

Introduction, Surface geometry, Mating surface, Friction, Adhesive wear, Abrasive wear, Corrosion wear, Surface fatigue spherical contact, Cylindrical contact, General contact, Dynamic contact stresses, Surface fatigue strength.   

Text Books And Reference Books:

T1. Ralph I. Stephens, Ali Fatemi, Robert .R. Stephens, Henry o. Fuchs, “Metal Fatigue in engineering”, Second edition, John wiley Newyork, 2001.

T2. Jack. A. Collins, “Failure of Materials in Mechanical Design”, John Wiley, Newyork 1992.

T3. Robert L. Norton, Machine Design, Pearson, 2005.

 

Essential Reading / Recommended Reading

R1. S.Suresh, “Fatigue of Materials”, Cambridge university press, Cambridge, U.K., 1998.

 

R2. Julie.A. Benantine, “Fundamentals of Metal Fatigue Analysis”, Prentice Hall, 1990.

 

R3. “Fatigue and Fracture”, ASM Hand Book, Vol 19, 2002.

 

Evaluation Pattern

CIA-50MARKS

ESE-50MARKS

MTME132 - THEORY OF APPLIED STRESS (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To obtain the stress strain relation for engineering materials.

•To know Yield criteria for ductile metal. 

•To understand the plastic stress-strain relations. 

•To learn Upper and lower bound theorems and corollaries. 

•To solve problems of tension compression, torsion and combined loading.

 

Learning Outcome

CO1: To Understand the concepts of stress and strain. {L2}

CO2: To demonstrate Idealized stress-strain diagrams for different material models. {L2}

CO3: To be able to formulate general stress-strain equations in cartesian and polar coordinate system. { L4}

CO4: To understand the concept of yield criterion. {L2}

CO5: To be able to solve Problems of uniaxial tension, compression, bending of beams and torsion. {L5}

Unit-1
Teaching Hours:9
INTRODUCTION STRESS
 

Definition and Notation for forces and stresses. Components of stresses, equations of Equilibrium, Specification of stress at a point. Principal stresses and Mohr's diagram in three dimensions. Boundary conditions.

Unit-1
Teaching Hours:9
INTRODUCTION TO STRAIN
 

Deformation, Strain Displacement relations, Strain components, The state of strain at a point, Principal strain, Strain transformation, Compatibility equations, Cubical dilatation.

Unit-2
Teaching Hours:9
STRESS-STRAIN RELATIONS AND THE GENERAL EQUATIONS OF ELASTICITY
 

Generalized Hooke's law in terms of engineering constants. Formulation of elasticity Problems. Existence and uniqueness of solution, Saint -Venant's principle, Principle of super position and reciprocal theorem.

Idealised stress-strain diagrams for different material models, Engineering and natural strains, Mathematical relationships between true stress and true strains

 

Unit-3
Teaching Hours:9
TWO DIMENSIONAL PROBLEMS IN CARTESIAN CO-ORDINATES
 

Airy's stress function, investigation for simple beam problems. Bending of a narrow cantilever beam under end load, simply supported beam with uniform load, Use of Fourier series to solve two dimensional problems.

Unit-3
Teaching Hours:9
TWO DIMENSIONAL PROBLEMS IN POLAR CO-ORDINATES
 

General equations, stress distribution symmetrical about an axis, Pure bending of curved bar, Strain components in polar co-ordinates, Rotating disk and cylinder, Concentrated force on semi-infinite plane, Stress concentration around a circular hole in an infinite plate

Unit-4
Teaching Hours:9
Unit-4
 

Yield criteria for ductile metal, Von Mises, Tresca, Yield surface for Isotropic Plastic materials, Stress space, Experimental verification of Yield criteria, 

Yield criteria for an anisotropic material.

Stress  -  Strain Relations, Plastic stress-strain relations, PrandtlRoeuss Saint Venant, Levy  -  Von Mises, Experimental verification of the Prandtl-Rouss equation, Yield locus, Symmetry convexity, Normality rule., 

Upper and lower bound theorems and corollaries

 

Unit-5
Teaching Hours:9
Unit-5
 

Application to problems: Uniaxial tension and compression, bending of beams, Torsion of rods and tubes, Simple forms of indentation problems using upper bounds. Problems of metal forming I: Extrusion, and Drawing.

Problems of metal forming II: Rolling and Forging. Slip line theory, Introduction, Basic equations for incompressible two-dimensional flows, continuity equations, Stresses in conditions of plain strain convention for slip-lines, Geometry of slip lines, Properties of slip lines.

 

Text Books And Reference Books:

T1.Timoshenko and Goodier, "Theory of Elasticity", McGraw Hill, 1982.

T2.R.A.C..Slater, “Engineering Plasticity - Theory and Application to Metal Forming Process”, McMillan Press Ltd.2016.

T3.Sadhu Singh," Theory of Elasticity”, Khanna publishers, Delhi, 2003.

T4.Sadhu Singh, “Theory of Plasticity and Metal forming Process”, 8th Edition, Khanna Publishers, Delhi, 2015.

 

Essential Reading / Recommended Reading

R1.L S Srinath, “Advanced Mechanics of Solids ", Tata Mcgraw-Hill, 2008.

R2.Phillips, Durelli and Tsao, " Introduction to the Theoretical and Experimental Analysis of Stress and Strain ", McGraw-Hill, 1st Edition,1958.

R3.W. & Mellor and P.B. Johnson, “Plasticity for Mechanical Engineers”, 1st Edition, D.Van Nostrand Company Inc., 1962.

R4.Oscar Hoffman and George Sachs, “Introduction to the Theory of Plasticity for Engineers”, 1st Edition, Literary Licensing, LLC., 2012.

R5.Chakraborty,”Theory of plasticity” 3rd Edition, Oxford: Elsevier Butterworth-Heinemann, 2007.

 

Evaluation Pattern

CIA-50marks

ESE-50marks

MTME133E1 - ADVANCED ENGINEERING MATERIAL (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 
  • Enable Students to recognize the conventional methods for processing of advanced composite materials
  • Enable Students to distinguish between the available reinforcing fibre performance
  • Enable Students to recognize the conventional thermo set and thermoplastic polymers
  • Enable Students to describe the mechanical properties of a collimated fiber, polymer composite as an anisotropic medium  Introduce test methods required to characterize anisotropic medium

Learning Outcome

CO1: Demonstarte an understanding of mechanics, physical and chemical properties of materials including metals, ceramics, polymers and composites(L4)

CO2: Understand existence of imperfections and their effects on mechanical properties of materials and the cause of failure (L4)

CO3: Demonstrate understanding of phase diagrams and their use in predicting phase transformation and microstructure(L4)

CO4: Understand and predict various types of failures using concept of fracture mechanics, creepand effect of impact (L4)

CO5: Know Electrical, Thermal, Optical and Magnetic Properties of metals, ceramics, polymers and composites(L3)

Unit-1
Teaching Hours:9
Introduction, Atomic Structure, Interatomic Bonding and Structure of Crystalline Solids:
 

Historical perspective of Materials Science. Why study properties of materials? Classification of materials. Advanced Materials, Future materials and modern materials, Atomicstructure. Atomic bonding in solids, Crystal structures, Crystalline and noncrystalline materials. Miller indices. Anisotropic elasticity. Elastic behaviour of composites. Structure and properties of polymers. Structure and properties of ceramics.

Unit-2
Teaching Hours:9
Imperfections in Solids and Mechanical Properties of Metals, Diffusion, Dislocations and Strengthening Mechanisms:
 

Point defects. Theoretical yield point. Line defects and dislocations. Interfacial defects. Bulk or volume defects. Atomic vibrations; Elastic deformation. Plastic deformation. Interpretation of tensile stress-strain curves Yielding under multiaxial stress. Yield criteria and macroscopic aspects of plastic deformation. Property variability and design factors, Diffusion mechanisms. Steady and non-steady state diffusion. Factors that influence diffusion. Non-equilibrium transformation and microstructure, Dislocation and plastic deformation. Mechanisms of strengthening in metals. Recovery, recrystallization and grain growth. Strengthening by second phase particles. Optimum distribution of particles. Lattice resistance to dislocation motion.

Unit-3
Teaching Hours:9
Phase Diagrams
 

Equilibrium phase diagrams. Particle strengthening by precipitation. Precipitation reactions. Kinetics of nucleation and growth. The iron-carbon system. Phase transformations. Transformation rate effects and TTT diagrams. Microstructure and property changes in ironT carbon system

Unit-4
Teaching Hours:9
Failure
 

Fracture. Ductile and brittle fracture. Fracture mechanics. Impact fracture. Ductile brittle transition. Fatigue. Crack initiation and propagation. Crack propagation rate. Creep. Generalized creep behaviour. Stress and temperature effects

Unit-5
Teaching Hours:9
Applications and Processing of Metals and Alloys, Polymers, Ceramics, and composites
 

Types of metals and alloys. Fabrication of metals. Thermal processing of metals. Heat treatment. Precipitation hardening. Types and applications of ceramics. Fabrication and processing of ceramics, Mechanicalbehaviour of polymers. Mechanisms of deformation and strengthening of polymers. Crystallization, melting and glass transition. Polymer types. Polymer synthesis and processing, Particle reinforced composites. Fibre reinforced composites. Structural composites

Text Books And Reference Books:

T1. MaterialsScienceandEngineering,WilliamD.Callister,Jr,JohnWiley&sons,07

Essential Reading / Recommended Reading

R1. ModernPhysicalMetallurgyandMaterialEngineering,Science,Process,application,SmallmanR.E.,BishopRJ,ButterworthHeinemann,SixthEd.,1999.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME133E3 - COMPUTER AIDED DESIGN (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 

At the end of this course, the students will be able to:

  • Have a conceptual understanding of the principles of CAD systems, the implementation of these principles, and its connections to CAM and CAE systems.
  • Understand 2D, 3D transformations and projection transformations
  • Get knowledge of various approaches of geometric modeling
  • Understand mathematical representation of 2D and 3D entities
  • Understand basic fundamentals of FEM
  • Integrate principles of related fields into the use of CAD software.

Learning Outcome

CO1: Have a conceptual understanding of the principles of CAD systems, the implementation of these principles, and their connections to CAM and CAE systems. {L2}

CO2: Understand 2D, 3D transformations and projection transformations {L3}

CO3: Get knowledge of various approaches to geometric modelling {L3}

CO4: Understand mathematical representation of 2D and 3D entities. {L4}

CO5: Understand basic fundamentals of FEM. {L5}

Unit-1
Teaching Hours:9
Introduction
 

CAD Hardware and Software, Types of systems and system considerations, input and output devices, hardware integration and networking, hardware trends, Software modules

Unit-2
Teaching Hours:9
Networks
 

Computer Communications, Principle of networking, classification networks, network wring, methods, transmission media and interfaces, network operating systems.

Unit-3
Teaching Hours:9
Computer Graphics Introduction
 

Computer Graphics Introduction, transformation of geometric models: translation, scaling, reflection, rotation, homogeneous representation, concatenated transformations; mappings of geometric models, translational mapping rotational mapping, general mapping, n mappings as changes of coordinate system; inverse transformations and mapping

Unit-4
Teaching Hours:9
Geometric Modeling
 

Projections of geometric models, orthographic projections, Geometric Modeling, curve representation: Parametric representation of analytic curves, parametric representation of synthetic curves, curve manipulations. Surface representation,

Unit-5
Teaching Hours:9
Fundamentals of solid modeling
 

Fundamentals of solid modeling, boundary representation (B-rep), Constructive Solid Geometry (CSF), sweep representation, Analytic Solid Modeling (ASM), other representations; solid manipulations, solid modeling based applications: mass properties calculations, mechanical

Text Books And Reference Books:

T1. Ibrahbim Zeid, “CAD / CAM Theory and Practice”.

T2. Jim Browne, “Computer Aided Engineering and Design”.

T3. P. Radhakrishnan / V. Raju / S. Subramanyam, “CAD / CAM / CIM”

T4: P.N. Rao, “CAD / CAM principles and applications”, Tata Mcraw-Hill, 02

Essential Reading / Recommended Reading

R1. Rogers / Adams, “Mathematical Elements for Computer Graphics”.

R2. Rooney and Steadman, “Principles of Computer Aided Design”, Aug. 1993.

R3. Jerry Banks / John Carson / Barry Nelson / David Nicol, “Discrete-Event System Simulation”

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME134E1 - EXPERIMENTAL STRESS ANALYSIS (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•Describe variety of strain gauges, mounting techniques and strain gauge circuits.

•Understand the fundamental concepts of photo elasticity and experimental techniques.

•Explain the two and three dimensional photo elasticity concept on the practical problems.

•Explain different types of coatings, test strain data using brittle coating and Birefringent coating.

•Understand the Moire fringe method, analysis and its applications.

 

Learning Outcome

CO1: To be able to describe the Sensitivity & the construction of strain gauges. {L3}

CO2: To elucidate the isoclinics & Fringe multiplication techniques. {L3}

CO3: To be able to explain the stress separation methods of 3D Photoelasticity. {L3}

CO4: To describe the Birefringence coating techniques. {L4}

CO5: To be able to describe the Moire's Techniques. {L3}

Unit-1
Teaching Hours:10
STRAIN ANALYSIS METHODS
 

Two element and three element, rectangular and delta rosettes, Correction for transverse strains effects, stress gage - plane shear gage, Stress intensity factor gage. 

Unit-1
Teaching Hours:10
ELECTRICAL RESISTANCE STRAIN GAUGES
 

Strain sensitivity of gage metals, Gage construction, Gage sensitivity and gage factor, Performance characteristics, Environmental effects Strain, gage circuits, Potentiometer, Wheat Stone's bridges, Constant current circuits. 

Unit-2
Teaching Hours:8
PHOTOELASTICITY
 

Nature of light, - wave theory of light,- optical interference - Polariscopes stress optic law - effect of stressed model in plane and circuclar Polariscopes, Isoclinics Isochromatics fringe order determination - Fringe multiplication techniques - Calibration Photoelastic model materials

Unit-2
Teaching Hours:8
TWO DIMENSIONAL PHOTOELASTICITY STRESS ANALYSIS
 

Separation methods shear difference method, Analytical separation methods, Model to prototype scaling.

Unit-3
Teaching Hours:9
THREE DIMENSIONAL PHOTOELASTICITY
 

Stress freezing method, General slice, Effective stresses, Stresses separation, Shear deference method, Oblique incidence method Secondary principals stresses, Scattered light photoelasticity, Principals, Polariscope and stress data analyses. 

Unit-4
Teaching Hours:9
COATING METHODS
 

a) Photoelastic Coating Method: Birefringence coating techniques Sensitivity Reinforcing and thickness effects - data reduction - Stress separation techniques Photoelastic strain gauges b) Brittle Coatings Method: Brittle coating technique Principles data analysis - coating materials, Coating techniques.

Unit-5
Teaching Hours:9
HOLOGRAPHY
 

Introduction, Equation for plane waves and spherical waves, Intensity, Coherence, Spherical radiator as an object (record process), Hurter, Driffeld curves, Reconstruction process, Holograpic interferometry, Real-time. and double exposure methods, Displacement measurement, Isopachics.

Unit-5
Teaching Hours:9
MOIRE TECHNIQUE
 

Geometrical approach, Displacement approach- sensitivity of Moire data data reduction, In plane and out plane Moire methods, Moire photography, Moire grid production.

Text Books And Reference Books:

T1.Dally and Riley, "Experimental Stress Analysis", McGraw Hill, 3rd revised Edition, 1991.

T2.Sadhu Singh, “Experimental Stress Analysis", Khanna publisher, 4th revised Edition, 2009.

T3.Srinath L.S, “Experimental stress Analysis”, Tata Mc Graw Hill, 1984.

 

Essential Reading / Recommended Reading

R1. M.M.Frocht, "Photoelasticity, Vol I and Vol II”, John Wiley & sons, 4th Revised Edition, 2003.

R2. Perry and Lissner, "Strain Gauge Primer", Mc Graw Hill, 2nd Revised Edition, 1962.

R3.Kuske, Albrecht & Robertson, "Photo Elastic Stress Analysis", John Wiley & Sons, 4th Revised Edition, 2003.

R4.Dave and Adam, "Motion Measurement and Stress Analysis", Merrill; First Edition, 1964

 

Evaluation Pattern

CIA-50MARKS

ESE-50MARKS

MTME134E2 - ROBOTICS (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 

At the end of the course:

·        Describe and explain 3D translation and orientation representation & Illustrate the robot arm kinematics and use of Robot Operating System usage.

·        Design / Simulate a robot that meets kinematic requirements.

·        Apply localization and mapping aspects of mobile robotics.

·        Demonstrate self-learning capability

·        To provide the student with some knowledge and analysis skills associated with trajectory planning.

To develop the student’s knowledge in various robot structures and their workspace

Learning Outcome

CO1: Understand basic terminologies and concepts associated with Robotics and automation (L2)

CO2: Demonstrate comprehension of various Robotic sub-systems (L2)

CO3: Understand kinematics and dynamics to explain the exact working pattern of robots (L3)

CO4: Aware of the associated recent updates in Robotics (L2)

CO5: To provide the student with some knowledge and analysis skills associated with trajectory planning. (L2}

Unit-1
Teaching Hours:9
Introduction
 

Basic Concepts such as Definition, three laws, DOF, Misunderstood devices etc., Elements of Robotic Systems i.e. Robot anatomy, Classification, Associated parameters i.e. resolution, accuracy, repeatability, dexterity, compliance, RCC device, etc. Automation - Concept, Need, Automation in Production System, Principles and Strategies of Automation, Basic Elements of an Automated System, Advanced Automation Functions, Levels of Automations, introduction to automation productivity

Unit-2
Teaching Hours:9
Robot Grippers
 

Types of Grippers, Design aspect for gripper, Force analysis for various basic gripper system. Sensors for Robots:- Characteristics of sensing devices, Selections of sensors, Classification and applications of sensors. Types of Sensors, Need for sensors and vision system in the working and control of a robot.

Unit-3
Teaching Hours:9
Drives and control systems
 

Types of Drives, Actuators and its selection while designing a robot system. Types of transmission systems, Control Systems -Types of Controllers, Introduction to closed loop control Control Technologies in Automation:- Industrial Control Systems, Process Industries Verses Discrete-Manufacturing Industries, Continuous Verses Discrete Control, Computer Process and its Forms. Control System Components such as Sensors, Actuators and others.

Unit-4
Teaching Hours:9
Kinematics
 

Transformation matrices and their arithmetic, link and joint description, Denavit – Hartenberg parameters, frame assignment to links, direct kinematics, kinematics redundancy, kinematics calibration, inverse kinematics, solvability, algebraic and geometrical methods. Velocities and Static forces in manipulators: - Jacobians, singularities, static forces, Jacobian in force domain. Dynamics:- Introduction to Dynamics , Trajectory generations. 

Unit-5
Teaching Hours:9
Machine Vision System
 

Vision System Devices, Image acquisition, Masking, Sampling and quantisation, Image Processing Techniques , Noise reduction methods, Edge detection, Segmentation. Robot Programming :- Methods of robot programming, lead through programming, motion interpolation, branching capabilities, WAIT, SIGNAL and DELAY commands, subroutines, Programming Languages: Introduction to various types such as RAIL and VAL II etc, Features of type and development of languages for recent robot systems

Text Books And Reference Books:

T1.John J. Craig, Introduction to Robotics (Mechanics and Control), Addison-Wesley, 2nd      Edition, 04

T2. Mikell P. Groover et. Al., Industrial Robotics: Technology, Programming and      Applications, McGraw – Hill International, 1986..

T3. Shimon Y. Nof , Handbook of Industrial Robotics , John Wiley Co, 01..

T4. Automation, Production Systems and Computer Integrated Manufacturing, M.P. Groover, Pearson Education.

T5. Industrial Automation: W.P. David, John Wiley and Sons.

Essential Reading / Recommended Reading

R1. Richard D. Klafter , Thomas A. Chemielewski, Michael Negin, Robotic Engineering :     An Integrated Approach , Prentice Hall India, 02.

R2. Handbook of design, manufacturing & Automation: R.C. Dorf, John Wiley and Sons.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME134E3 - OPTIMIZATION TECHNIQUES IN DESIGN (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 

·        Introduction to classical optimization technique.

·        To learn non-linear programming

To know the constrained optimization techniques.

Learning Outcome

CO1: Students will know the principles of optimization. {L2}

CO2: Students will have knowledge of algorithms for design optimization. {L2}

CO3: Students will be able to formulate an optimization problem. {L3}

CO4: Students should be able to find the optimum solution to their problems using optimization techniques. {L3}

CO5: Solve optimization problems using appropriate techniques and tools.(L3)

Unit-1
Teaching Hours:9
UNIT-1
 

Introduction to optimization, classification of optimisation problems, classical optimization techniques. 

Unit-2
Teaching Hours:9
Unit-2
 

Linear programming, simplex method and Duality in linear programming, sensitivity or post-optimality analysis, Karmarkar’s methods.

Unit-3
Teaching Hours:9
Unit-3
 

Non-Linear Programming: - One dimensional minimization, unconstrained and constrained minimization, direct and indirect methods.

Unit-4
Teaching Hours:9
Unit-4
 

Geometric programming, Optimum design of mechanical elements like beams, columns, gears, shafts, etc

Unit-5
Teaching Hours:9
Unit-5
 

Introduction to Genetic Algorithms, Operators, applications to engineering optimization problems.

Text Books And Reference Books:

T1. S. S. Stricker, “Optimising performance of energy systems” Battelle Press, NY, 1983.

T2. R.C. Johnson, “Optimum Design of Mechanical Elements”, Willey, New York, 1980.

T3. J. S. Arora, “Introduction to Optimum Design”, McGraw Hill, New York, 1989.

T4. Kalyanmoy Deb, “Optimization for Engineering Design”, Prentice Hall of India, 2005. 

Essential Reading / Recommended Reading

R1. L.C.W. Dixon, “Non-Linear Optimisation – Theory & Algorithms”, Birkhauser, Boston, 1980.

R2. R.J. Duffin, E.L. Peterson and C.Zener “Geometric Programming-Theory and Applications”, Willey, New York, 1967.

R3. G.B. Dantzig “Linear Programming and Extensions Princeton University Press”, Princeton, N. J., 1963.

R4. R. Bellman “Dynamic Programming-Princeton” University Press, Princeton, N.J. 1957.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME134E4 - DESIGN FOR MANUFACTURING (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To know the design consideration for manufacturing of components.

•To describe the different types of features in the design for manufacturing the components. 

•To know the geometrical tolerance for manufacturing the components.

•To learn the theory behind Component design with machining considerations.

•To learn to design gauges, suitable for checking of components in assembly.

 

Learning Outcome

CO1: Outline the appropriate design for economical production and select the materials. {L2}

CO2: Select between various machining and metal joining processes. {L2}

CO3: Apply a systematic understanding of knowledge in the field of metal casting and forging. {L4}

CO4: Fabricate basic parts and assemblies using powered and non powered machine shop equipment in conjunction with mechanical documentation. {L2}

CO5: To learn to design gauges suitable for checking components in the assembly. {L5}

Unit-1
Teaching Hours:9
Effect of Materials and Manufacturing Process on Design:
 

Effect of Materials and Manufacturing Process on Design:  Major phases of design. Effect of material properties on design Effect of manufacturing processes on design.  Material selection process-  cost per unit property, Weighted properties and limits on properties methods.

Unit-1
Teaching Hours:9
Tolerence Analysis
 

Tolerence Analysis: Process capability, mean, varience, skewness ,kurtosis, Process capability metrics, Cp, Cpk,  Cost aspects,  Feature tolerances,  Geometries  tolerances,  Geometric tolerances,  Surface finish,  Review of relationship between attainable tolerance grades and different machining process. Cumulative effect of tolerance- Sure fit law and truncated normal law.                

Unit-2
Teaching Hours:9
Datum Features
 

Datum Features : Functional datum, Datum for manufacturing, Changing the datum. Examples.

Unit-2
Teaching Hours:9
Selective Assembly:
 

Selective Assembly:  Interchangeable part manufacture and selective assembly, Deciding the number of groups  -Model-1 : Group tolerance of mating parts equal, Model total and group tolerances of shaft equal. Control of axial play-Introducing secondary machining operations, Laminated shims, examples.

Unit-3
Teaching Hours:8
Design Considerations
 

 Design Considerations :  Design of components with casting consideration. Pattern, Mould, and Parting line. Cored holes and  Machined holes.

Identifying the possible and probable parting line. Casting requiring special sand cores. Designing to obviate sand cores.                                                                                        

Unit-4
Teaching Hours:10
True positional theory:
 

True positional theory:  Comparison between co-ordinate and convention method of feature location. Tolerance and true position tolerancing virtual size concept, Floating and fixed fasteners. Projected tolerance zone. Assembly with gasket, zero position tolerance. Functional gauges, Paper layout gauging.                                                                                                                 

Unit-4
Teaching Hours:10
Component Design :
 

Component Design :  Component design with machining considerations link design for turning components-milling, Drilling and other related processes including finish- machining operations.

Unit-5
Teaching Hours:9
Design of Gauges
 

Design of Gauges: Design of gauges for checking components in assemble with emphasis on various types of limit gauges for both hole and shaft.

Text Books And Reference Books:

T1. Harry Peck, “Designing for Manufacturing “- Pitman Publications, 1983.

T2. R.K. Jain ,”Engineering Metrology” - Khanna Publication ,2011.

T3. Corrado Poli, “Design for Manufacturing”, Butterworth-Heinemann, 2001.

Essential Reading / Recommended Reading

R1. Geoffrey Boothroyd, peter dewhurst, Winston Knight,”Product design for manufacture and assembly” - Merceldekker.Inc. New York, CRC Press, 3rd Edition, 2010.

R2. “Material selection and Design”, Vol. 20 - ASM Hand book.

R3. O. MolloyE.A. WarmanS. Tilley, “Design for Manufacturing and Assembly: Concepts, architectures and implementation”, Springer Science & Business Media, 1998.

Evaluation Pattern

CIA1-10

CIA2-25

CIA3-10

ATTENDANCE-05

 

ESE- 50

 

 

MTME151 - ADVANCED CAD LABORATORY (2024 Batch)

Total Teaching Hours for Semester:60
No of Lecture Hours/Week:4
Max Marks:50
Credits:2

Course Objectives/Course Description

 

•The students will be able use Commercial CAD tools for solving real life Engineering Mechanics related problems. 

•Students will be able to function as a design engineering team member. 

•Students will be able to write technical reports.

 

Learning Outcome

CO1: The students will be able use Commercial CAD tools for solving real life Engineering Mechanics related problems. {L3}

CO2: Students will be able to function as a design engineering team member. {L5}

CO3: Students will be able to write technical reports. {L5}

Unit-1
Teaching Hours:60
List of Exercise :
 

1.      Introduction to CAD Commercial Tool.

2.      Type of Modules and commands.

3.      Introduction to Sketching

4.      Introduction to Part Modelling.

5.      Introduction to Assembly drawing

6.      Introduction to drafting 3D model.

7.      Exercises on Part Modelling.

8.      Exercises on Assembly Drawing.

9.      Generation of Bill of Materials (BOM).

10.   Surface Modelling.

Text Books And Reference Books:

T1: 'A Primer on Computer Aided Machine Drawing-2007’, Published by VTU, Belgaum.

T2: 'Machine Drawing', N.D.Bhat & V.M.Panchal, 2012.

 

Essential Reading / Recommended Reading

R1: 'A Text Book of Computer Aided Machine Drawing', S. Trymbaka Murthy, CBS Publishers, New Delhi, 2007

R2: 'Machine Drawing’, K.R. Gopala Krishna, Subhash Publication,2012.

R3: 'Machine Drawing with Auto CAD', Goutam Pohit & Goutham Ghosh, 1st Indian print Pearson Education, 2007

R4: 'Auto CAD 2015, for engineers and designers', Sham Tickoo. Dream tech 2015

 

Evaluation Pattern

CIA-25MARKS

ESE-25MARKS

MTME152 - SIMULATION LABORATORY (2024 Batch)

Total Teaching Hours for Semester:60
No of Lecture Hours/Week:4
Max Marks:50
Credits:2

Course Objectives/Course Description

 

•The students will be able use Commercial FEM tools for solving real life Engineering Mechanics related problems. 

•Students will be able to function as a design engineering team member. 

•Students will be able to write technical reports.

 

Learning Outcome

CO1: The students will be able use Commercial FEM tools for solving real life Engineering Mechanics related problems. {L3}

CO2: Students will be able to function as a design engineering team member. {L5}

CO3: Students will be able to write technical reports. {L5}

Unit-1
Teaching Hours:60
List of Experiments:
 

1.      Introduction to FEM Commercial Tool.

2.      Types of Elements and their usages (1-D, 2-D and 3-D)

3.      Selection and Simplification of the geometry and Meshing Techniques.

4.      Beam and Frame Problems solving using FEM 3D tool.

5.      Static loading problem solution using FEM tool.

6.      Dynamic Loading problem solution using FEM tool.

7.      Mesh convergence study using above two problems.

8.      Effects of different types of friction on contact mechanisms.

9.      Three dimensional truss problems

10.   Study on natural frequency and influence of materials and boundary condition on it.

Text Books And Reference Books:

T1.  Hughes, T. J. R. (2007). Finite Element Method: Linear Static and Dynamic Finite Element Anlaysis. New York: Dover Publications.

T2. Babuška, I., Whiteman, J. R., & Strouboulis, T. (2011). Finite Elements: An introduction to the method and error estimation. Oxford ; New York: Oxford University Press.

T3. Gokhale, N. S. (2008). Practical finite element analysis. Maharashtra: Finte to Infinite.

 

Essential Reading / Recommended Reading

R1. Thompson, E. G. (2005). An introduction to the finite element method: Theory, programming, applications. New Delhi: Wiley.

Evaluation Pattern

CIA-25MARKS

ESE-25MARKMS

MTME231 - ADVANCED FINITE ELEMENT METHOD (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

This course provides an introduction to finite elements method with a focus on one and two dimensional problems in structures, heat transfer, static and dynamics.

Learning Outcome

CO1: To demonstrate understanding of FE formulation for linear problems in solid mechanics. {L3}

CO2: To classify a given problem on the basis of its dimensionality as 1-D, 2-D, or 3-D, time-dependence as Static or Dynamic, Linear or Non-linear. {L3}

CO3: To develop a mathematical model of a problem following the Rayleigh-Ritz and Galerkin weighted residual method. {L2}

CO4: To Find the shape function for different elements including higher order elements. {L4}

CO5: To derive Stiffness matrices, load vectors for bar, truss, beam and heat transfer problems {L4}

Unit-1
Teaching Hours:11
ONE-DIMENSIONAL ELEMENTS-ANALYSIS OF BARS AND TRUSSES
 

Basic Equations and Potential Energy Functional, 1-0 Bar Element, Admissible displacement function, Strain matrix, Stress recovery, Element equations, Stiffness matrix, Consistent nodal force vector: Body force, Initial strain, Assembly Procedure, Boundary and Constraint Conditions, Single point constraint, Multi-point constraint, 2-D Bar Element, Shape functions for Higher Order Elements.          

Unit-1
Teaching Hours:11
INTRODUCTION
 

Engineering Analysis, History, Advantages, Classification, Basic steps, Convergence criteria, Role of finite element analysis in computer-aided design. Mathematical Preliminaries, 

Differential equations formulations, Variational formulations, weighted residual methods  

 

Unit-2
Teaching Hours:8
AXI-SYMMETRIC SOLID ELEMENTS-ANALYSIS OF BODIES OF REVOLUTION UNDER AXI-SYMMETRIC LOADING
 

Axisymmetric Triangular and Quadrilateral Ring Elements. Shape functions for Higher Order Elements. 

Unit-2
Teaching Hours:8
Two-Dimensional Elements-Analysis Of Plane Elasticity Problems
 

Three-Noded Triangular Element (TRIA 3), Four-Noded Quadrilateral Element (QUAD 4), Shape functions for Higher Order Elements (TRIA 6, QUAD 8) 

Unit-3
Teaching Hours:8
Three-Dimensional Elements-Applications To Solid Mechanics Problems System
 

Basic Equations and Potential Energy Functional, Four-Noded Tetrahedral Element (TET 4), Eight-Noded Hexahedral Element (HEXA 8), Tetrahedral elements, Hexahedral elements: Serendipity family, Hexahedral elements: Lagrange family. Shape functions for Higher Order Elements. 

Unit-4
Teaching Hours:10
HEAT TRANSFER / FLUID FLOW
 

Steady state heat transfer, 1 D heat conduction governing equation, boundary conditions, One dimensional element, Functional approach for heat conduction, Galerkin approach for heat conduction, heat flux boundary condition, 1 D heat transfer in thin fins. Basic differential equation for fluid flow in pipes, around solid bodies, porous media.

Unit-4
Teaching Hours:10
Beam Elements-Analysis Of Beams And Frames
 

1–D Beam Element, 2–D Beam Element, Problems.

Unit-5
Teaching Hours:8
Dynamic Considerations
 

Formulation for point mass and distributed masses, Consistent element mass matrix of one dimensional bar element, truss element, axisymmetric triangular element, quadrilatateral element, beam element. Lumped mass matrix, Evaluation of eigen values and eigen vectors, Applications to bars, stepped bars, and beams.                                    

Text Books And Reference Books:

T1. Chandrupatla T. R., “Finite Elements in engineering”- 2nd Edition, PHI, 2007.

T2. Lakshminarayana H. V., “Finite Elements Analysis”– Procedures in Engineering, Universities Press, 2004. 

 

Essential Reading / Recommended Reading

R1. Rao S. S. “Finite Elements Method in Engineering”- 4th Edition, Elsevier, 2006

R2. P.Seshu, “Textbook of Finite Element Analysis”-PHI, 2004.

R3. J.N.Reddy, “Finite Element Method”- McGraw -Hill International Edition. Bathe K. J. Finite Elements Procedures, PHI. 

R4. Cook R. D., et al. “Concepts and Application of Finite Elements Analysis”- 4th Edition, Wiley & Sons, 2003.

 

Evaluation Pattern

CIA-50MARKS

ESE-50MRAKS

MTME232 - ADVANCED THEORY OF VIBRATIONS (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To obtain the idea of classification of vibration, modal analysis.

•To acquire the knowledge of damping factor and measuring instruments.

•To know the DOF and the damping factors

•To understand the measuring instruments

 

Learning Outcome

CO1: To learn the classification of mechanical vibration {L2}

CO2: To acquire the knowledge of damping factors and transient vibration. {L4}

CO3: To learn about vibration control and the damping factors. {L6}

CO4: To understand the working of measuring instruments and condition monitoring systems. {L2}

CO5: To learn random vibration and continuous systems. {L2}

Unit-1
Teaching Hours:9
REVIEW OF MECHANICAL VIBRATIONS:
 

Basic concepts; free vibration of single degree of freedom systems with and without damping, Forced vibration of single DOF-systems, Force and motion isolation, Two DOF-systems, natural frequency.      

Unit-2
Teaching Hours:8
TRANSIENT VIBRATION OF SINGLE DEGREE-OF FREEDOM SYSTEMS
 

Impulse excitation, Arbitrary excitation, Laplace transform formulation, Pulse excitation and rise time, Shock response spectrum, Shock isolation, Finite difference numerical computation. 

Unit-3
Teaching Hours:10
VIBRATION CONTROL
 

Introduction, Vibration isolation theory, Vibration isolation theory for harmonic excitation, practical aspects of vibration analysis, shock isolation, Dynamic vibration absorbers, and Vibration dampers. 

Unit-3
Teaching Hours:10
VIBRATION MEASUREMENT AND APPLICATIONS
 

Introduction, Transducers, Vibration pickups, Frequency measuring instruments, Vibration exciters, Signal analysis. 

Unit-4
Teaching Hours:9
MODAL ANALYSIS & CONDITION MONITORING
 

Dynamic Testing of machines and Structures, Experimental Modal analysis, Machine Condition monitoring and diagnosis.

Unit-4
Teaching Hours:9
NON LINEAR VIBRATIONS
 

Introduction, Sources of nonlinearity, Qualitative analysis of nonlinear systems. Phase plane, Conservative systems, Stability of equilibrium, Method of isoclines, Perturbation method, Method of iteration, Self-excited oscillations. 

Unit-5
Teaching Hours:9
CONTINUOUS SYSTEMS
 

Vibrating string, Longitudinal vibration of rods, Torsional vibration of rods, Suspension bridge as continuous system, Euler equation for beams, Vibration of membranes.

Unit-5
Teaching Hours:9
RANDOM VIBRATIONS
 

Random phenomena, Time averaging and expected value, Frequency response function, Probability distribution, Correlation, Power spectrum and power spectral density, Fourier transforms, FTs and response. 

Text Books And Reference Books:

T1. William T. Thomson, Marie Dillon Dahleh, Chandramouli Padmanabhan, “Theory of Vibration with Application”, 5th edition Pearson Education, 2008. 

T2. S. Graham Kelly, “Fundamentals of Mechanical Vibration” 2nd edition, McGraw Hill, 2000. 

T3. S. S. Rao, “Mechanical Vibrations”, 4th edition Pearson Education, 2003. 

T4. W.T. Thomson and Marie Dillon Dahleh, “Theory of Vibration with Applications”, Pearson Education 5th edition, 2007.

T5. V.P. Singh, “Mechanical Vibrations”, Dhanpat Rai & Company Pvt. Ltd., 3rd edition, 2006.

 

Essential Reading / Recommended Reading

R1.  S. Graham Kelly, Schaum’s Outlines, “Mechanical Vibrations”, Tata McGraw Hill, 2007.

R2. J.S. Rao & K. Gupta, “Theory & Practice of Mechanical vibrations” New Age International Publications, New Delhi, 2001.

R3. Leonanrd Meirovitch, “Elements of Vibrations Analysis”, Tata McGraw Hill, Special Indian edition, 2007.

 

Evaluation Pattern

CIA-50MARKS

ESE-50MARKS

MTME233E1 - TRIBOLOGY IN BEARING DESIGN (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

•To study the types of contacts, types of bearing. 

•Design a bearing based on their application and types of load. 

•To know the response of idealized bearing systems.

 

Learning Outcome

CO1: To understand the principles of tribology for selecting compatible materials for minimizing friction and wear in machinery. {L2}

CO2: To understand the principles of bearing selection based on the application. {L2}

CO3: To learn the computations required for selecting and designing bearings in machines. {L4}

CO4: To understand the fundamental principles of gas lubricated bearings. {L2}

CO5: To understand the fundamental principles of magnetic bearings. {L5}

Unit-1
Teaching Hours:9
INTRODUCTION TO TRIBOLOGY
 

Introduction, Friction, Wear, Wear Characterization, Regimes of lubrication, Classification of contacts, lubrication theories. Newton's Law of viscous forces, Effect of pressure and temperature on viscosity.

Unit-1
Teaching Hours:9
HYDRODYNAMIC LUBRICATION:
 

Newton's Law of viscous forces, Flow through stationary parallel plates. Hagen's poiseuille's theory, viscometers. Numerical problems, Concept of lightly loaded bearings, Petroff's equation, Numerical problems.

Unit-2
Teaching Hours:9
HYDRODYNAMIC BEARINGS
 

Pressure development mechanism. Converging and diverging films and pressure induced flow. Reynolds's 2D equation with assumptions. Introduction to idealized slide bearing with fixed shoe and Pivoted shoes. Expression for load carrying capacity. Location of centre of pressure, Numerical problems

Unit-2
Teaching Hours:9
JOURNAL BEARINGS
 

Introduction to idealized full journal bearings. Load carrying capacity of idealized full journal bearings, Sommerfeld number and its significance. Comparison between lightly loaded and heavily loaded bearings, Numerical problems.

Unit-3
Teaching Hours:9
EHL CONTACTS
 

Introduction to Elasto - hydrodynamic lubricated bearings. Introduction to 'EHL' constant. Grubin type solution. Introduction to gas lubricated bearings. Governing differential equation for gas lubricated bearings.

Unit-4
Teaching Hours:9
POROUS & GAS BEARINGS
 

Introduction to porous bearings. Equations for porous bearings and working principal, Fretting phenomenon and it's stages             

Unit-4
Teaching Hours:9
HYDROSTATIC BEARINGS
 

Types of hydrostatic Lubrication systems Expression for discharge, load carrying capacity, Flow rate, Condition for minimum power loss. Torque calculations. Numerical problems.

Unit-5
Teaching Hours:9
MAGNETIC BEARINGS
 

Introduction to magnetic bearings, Active magnetic bearings. Different equations used in magnetic bearings and working principal. Advantages and disadvantages of magnetic bearings, Electrical analogy, Magneto-hydrodynamic bearings

Text Books And Reference Books:

T1. B.C. Majumdar "Introduction to Tribology of Bearing", Wheeler Publishing, New Delhi, 2001. 

T2. Susheel Kumar Srivasthava "Tribology in industry" S. Chand and Co, 2000. 

T3. D. Berthe, D. Dowson, M. Godet, C.M. Taylor, “Tribological Design of Machine Elements”, Elsevier Science, 1989.

T4.  E. Richard Booser, Michael M. Khonsari, “Applied Tribology Bearing Design and Lubrication” Wiley, 2017.

 

Essential Reading / Recommended Reading

R1. Dudley D. Fulier, "Theory and practice of Lubrication for Engineers", New York Company, 1998. 

R2. Moore "Principles and applications of Tribology" Pergamon press, 1st Edition, 1975.

R3. Pinkus .O. Stemitch. "Theory of Hydrodynamic Lubrication", Mc-Graw Hill Book Company Inc., New York, 1961.

R4. Gerhandschwetizer, Hannes Bleuler & Alfons Traxler, "Active Magnetic bearings", Authors working group, www.mcgs.ch., 2003. 

R5. Radixmovsky, "Lubrication of Bearings - Theoretical principles and design", The Oxford press Company, 2000. 

 

Evaluation Pattern

CIA-50MARKS

ESE-50MARKS

MTME234E1 - PRODUCT DESIGN AND VALUE ENGINEERING (2024 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

·        The student shall gain appreciation and understanding of the product design and value engineering, the steps involved in designing and the relation of design activity with manufacturing activity.

·        Shall be able to to coordinate multiple, interdisciplinary tasks in order to achieve a common objective and enhance team-working skills.

·        Student shall gain competence with a set of tools and methods for product design and development.

·        Awareness of the role of multiple functions in creating a new product (e.g. marketing, finance, industrial design, engineering, production).

 

·        Student shall gain confidence in your own abilities to create a new product.

Learning Outcome

CO1: Identify and analyse the product design and development processes and value engineering in manufacturing industry.{L2}

CO2: Define the components and their functions of product design and development processes and their relationships from concept to customer over whole product lifecycle. .{L2}

CO3: Analyse and apply the methodologies for product design, development and management. {L4}

CO4: Carry out cost and value analysis through various strategies and models. {L4}

CO5: Apply creative thinking skills for idea generation and translate conceptual ideas into products. {L2}

Unit-1
Teaching Hours:9
Introduction To Product Design
 

Asimow’s model: Definition of product design -  Design by evolution - Design by innovation - Essential factors of Product design - Production-Consumption cycle - Flow and value addition in the Production-Consumption cycle, 

Unit-1
Teaching Hours:9
The Morphology of Design
 

{The seven phases} - Primary design phases and flowcharting - Role of allowance - Process capability and Tolerance in detailed design & assembly

Unit-2
Teaching Hours:9
Product Design Practice and Industry
 

Introduction - Product Strategies - Time to Market - Analysis of the product - The S’s Standardization - Renard Series – Simplification - Role of Aesthetics in Product Design - Functional Design Practice. 

Unit-2
Teaching Hours:9
Review of Strength, Stiffness and Rigidity Considerations In Product Design
 

Principal stress trajectories {Force-Flow lines} - Balanced design - Criteria and objectives of Design - Material Toughness: Resilience designing for uniform strength - Tension vis-à-vis Compression. Review of production processes. 

Unit-3
Teaching Hours:9
Human Engineering Consideration In Product Design
 

Introduction - Human being as applicator of forces - Anthropometry; Man as occupant of space - The design of controls - The design of displays - Man/Machine information exchange.

Unit-3
Teaching Hours:9
Economic Factor Influencing Design and Product Value
 

Design for safety - Reliability and environmental considerations - Manufacturing operations in relation to Design - Economic analysis - Profit and Competitiveness - Break-Even analysis - Economic of a new product design.

Unit-4
Teaching Hours:9
Optimization In Design
 

Introduction - Siddal’s classification of design approach - Optimization by differential calculus - Legrange Multipliers - Linear programming {Simplex Method} - Geometric programming - Johnson’s method of optimum design.

Unit-4
Teaching Hours:9
New Product Development And Product Management
 

Introduction – Product by nature of demand - New product strategy – Product classification –Product Management- The product life cycle – Booz, Allen, Hamilton new product development process.

Unit-5
Teaching Hours:9
Material and Process Selection In Value Engineering
 

 Modern approach to product design: Concurrent design and Quality function deployment {QFD}- Principle of rapid prototyping and its technologies   

Unit-5
Teaching Hours:9
Value Engineering and Product Design
 

Introduction - Historical perspective - What is value? Nature and measurement of value - Normal degree of value - Importance of value - the value analysis job plan – creativity - Steps to problem-solving and value analysis - Value analysis test - Value engineering idea generation check-list cost reduction through value engineering case study on Tap switch control assembly.

Text Books And Reference Books:

1. A.C. Chitale and R.C. Gupta, “Product Design and Manufacturing, 6 th edition, PHI, 2011.

2. Karl T.Ulrich & Steven D, Epinger, “Product Design & Development”, 4th edition, Tata Mc. Graw Hill, 2007.

Essential Reading / Recommended Reading

1. Tim jones, Butterworth Heinmann, “New Product Development”, Oxford, mc 1997.

2. Roland EngeneKinetovicz, “New Product Development: Design & Analysis” John Wiley and Sosn Inc., N.Y.1990.

Evaluation Pattern

CIA-50Marks

ESE- 50Marks

MTME251 - ADVANCED DESIGN LABORATORY (2024 Batch)

Total Teaching Hours for Semester:60
No of Lecture Hours/Week:4
Max Marks:50
Credits:2

Course Objectives/Course Description

 

•To develop skills in the field of design Engineering.

•Verify the principles of the course, Application of the theory, Understanding of fundamentals of the subject design Engineering.

•Be in a position to relate theory and practice

 

Learning Outcome

CO1: To apply the concepts of design Engineering, and appreciate its application in various engineering applications {L2}

CO2: To perform design engineering experiments for various mechanical elements. {L5}

CO3: Calculate the stresses, strain and elongation/Contraction in bars and beams. (L3)

Unit-1
Teaching Hours:60
List of Experiments
 

1.      Tensile, shear and compression tests of metallic and non metallic specimens using Universal Testing Machine.

2.      Bending Test on metallic and nonmetallic specimens.

3.      Preparation of specimen for Metallographic examination of different engineering materials. Identification of microstructures of plain carbon steel, tool steel, gray C.I, SG iron, Brass, Bronze & composites

4.      Determination of critical speed of a rotating shaft.

5.      Determination of Fringe constant of Photoelastic material using.

    1. Circular disc subjected to diametral compression.
    2. Pure bending specimen (four point bending )

6.      Determination of stress concentration using Photoelasticity for simple components like plate with a hole under tension or bending, circular disk with circular hole under compression, 2D Crane hook

7.      To study the wear characteristics of ferrous, non-ferrous and composite materials for different parameters.

8.      Determination of Pressure distribution in Journal bearing.

9.      Determination of Principal Stresses and strains in a member subjected to combined loading using Strain rosettes.

10.   Determination of stresses in Curved beam using strain gauge.

11.   Determination of natural frequency, logarithmic decrement, damping ratio and damping coefficient in a single degree of freedom vibrating systems (longitudinal and torsional)

12.   Non-destructive test experiments like,

            (a). Ultrasonic flaw detection

            (b). Magnetic crack detection

            (c). Dye penetration testing. To study the defects of Cast and   Welded               specimens

Text Books And Reference Books:

T1.Mechanical Vibrations, S. S. Rao, Pearson Education Inc, 4th edition, 2003.

T2.Mechanical Vibrations, V. P. Singh, Dhanpat Rai & Company, 3rd edition, 2006.

T3. Egor P. Popov, Engineering Mechanics of Solids, Prentice Hall of India, New Delhi,   2001.

T4. R. Subramanian, Strength of Materials, Oxford University Press, 2007.

T5. Ferdinand P. Been, Russel Johnson Jr and John J. Dewole, Mechanics of Materials, Tata McGrawHill Publishing Co. Ltd., New Delhi 2005.

 

Essential Reading / Recommended Reading

R1. S.S. Rattan, "Strength of Materials", 3rd Edition, Tata McGraw Hill, 2011.

R3.K.V. Rao, G.C. Raju, “Mechanics of Materials", First Edition, 2007.

R4.Egor.P. Popov,"Engineering Mechanics of Solids", Pearson Edu. India, 2008.

R5.W.A. Nash, Schaum's Outlines Strength of Materials,Tata Mcgraw-Hill Publishing Company 2010.

R6R.K. Rajput“Strength of Materials”,S.Chand & co Ltd. New Delhi, 2015.

R7. R.KBansal, “Strength of Materials”,Lakshmi Publication (P) Ltd, New Delhi,2009.

 

Evaluation Pattern

CIA-25MARKS

ESE-25MARKS

MTME252 - ANALYSIS LABORATORY (2024 Batch)

Total Teaching Hours for Semester:60
No of Lecture Hours/Week:4
Max Marks:50
Credits:2

Course Objectives/Course Description

 

·        To understand the concept of Finite Element Analysis and their applications, advantages and disadvantages.
·        To understand the Steps involved in FEA and factors influencing FEA results.
·        Discuss the assumptions on material properties and boundary conditions.

Learning Outcome

CO1: To gain basic knowledge about FEM tools and their characteristics. {L2}

CO2: To elaborate on the selection of geometry and its simplification. {L5}

CO3: To understand types of material data and application of boundary conditions. {L5}

Unit-1
Teaching Hours:60
List of Experiments
 

1.  Introduction to FEM Commercial Tool.

2. Types of Elements and their usages (1-D, 2-D and 3-D)

3. Bars of constant cross section area, tapered cross section area and stepped bar, Trusses – (Minimum 2 exercises)

4. Beams – Simply supported, cantilever, beams with UDL, beams with varying load etc. (Minimum 6 exercises)

5. Stress analysis of a rectangular plate with a circular hole

6. Thermal Analysis – 1D & 2D problem with conduction and convection boundary conditions(Minimum 4 exercises)     

7. Dynamic Analysis

a)     Fixed – fixed beam for natural frequency determination

b)     Bar subjected to forcing function

c)      Fixed – fixed beam subjected to forcing function

Text Books And Reference Books:

T1. Introduction to Finite Elements in Engineering, T.R.Chandrupatla, A.D Belegund, 3rd Ed PHI, 2002.

T2. Finite Element Method in Engineering, S.S. Rao, 5th Edition, Elsevier, 2011. 

 

Essential Reading / Recommended Reading

R1. Finite Element Methods for Engineers U.S. Dixit, Cengage Learning, 2009

R2. Concepts and applications of Finite Element Analysis, R.D. Cook D.S Maltus, M.E Plesha, R.J.Witt, Wiley 4th Ed, 2009.

R3. First Course in Finite Element Methods, Daryl. L. Logon, Cengage Learning 5th edition, 2012.

 

Evaluation Pattern

CIA-25MARKS

ESE-25MARKS

MTME281 - MINI PROJECT (2024 Batch)

Total Teaching Hours for Semester:60
No of Lecture Hours/Week:4
Max Marks:50
Credits:2

Course Objectives/Course Description

 

The mini project work extends for a single semester and exposes the student to develop and present his/her work related to specific topic. Student shall select the project topic in consultation with mentor/guide/supervisor to his/her area of specialization and work on it. Student will prepare a report outlining objective of the project work, importance of the study, review of literature published in the relevant field and possible areas for further work. The student shall present seminar on this report. 

Learning Outcome

CO1: Student will be able to apply the skill of presentation and communication techniques {L2}

CO2: Student will be able to use the knowledge of the fundamentals of subjects to search the related literature {L4}

CO3: Student will be able to analyze the available resources and to select most appropriate one {L3}

CO4: Students will be able to apply a multidisciplinary strategy to address current, realworld issues. {L3}

Unit-1
Teaching Hours:60
Guidelines for Mini Project
 

1. Mini project should be based on thrust areas in Mechanical Engineering (Machine Design aspect is appreciated)

2. Students should do literature survey and identify the topic of seminar/mini project and finalize in Consultation with Guide/Supervisor.

3. Students should use multiple literatures.

Text Books And Reference Books:

The theme of the Project-related journal papers and reference books.

Essential Reading / Recommended Reading

The theme of the Project-related journal papers and reference books.

Evaluation Pattern

overall-50marks

MTME331E1 - FRACTURE MECHANICS (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 
  • To expand student’s knowledge in the area of linear-elastic fracture mechanics and the stress analysis of cracked bodies with a focus on metallic structures using simulations.
  • To develop student’s ability to compute crack-tip stress-intensity factors for two and three-dimensional cracked bodies of LEFM using simulation tools.
  • To develop student understands of the relationship between the energetic approach and the stress analysis of cracked bodies using simulation tools.

Learning Outcome

CO1: Analyze nature of stresses around a cracked body by applying principles of linear elastic fracture mechanics and compute stress intensity factors using simulation tools. (L3)

CO2: Interpret the result of a fracture mechanics analysis for metallic structures using simulation tools. (L3)

CO3: Study KIc/J- testing using various types of test specimens using simulation tools. (L2)

CO4: Evaluate the fracture related failures using simulation tools. (L3)

CO5: Learn to apply fracture mechanics principles in forensic engineering and failure prevention.(L4)

Unit-1
Teaching Hours:9
FRACTURE MECHANICS PRINCIPLES:
 

Introduction and historical review, Sources of micro and macro cracks. Stress concentration due to elliptical hole, Strength ideal materials, Griffith’s energy balance approach. Fracture mechanics approach to design. NDT and Various NDT methods used in fracture mechanics, Numerical problems

Unit-2
Teaching Hours:9
THE AIRY STRESS FUNCTION:
 

Complex stress function. Solution to crack problems. Effect of finite size. Special cases, Elliptical cracks, Numerical problems.

Unit-2
Teaching Hours:9
PLASTICITY EFFECTS, IRWIN PLASTIC ZONE CORRECTION:
 

Dugdale approach. The shape of the plastic zone for plane stress and plane strain cases, Plastic constraint factor. The Thickness effect, numerical problems. 

Unit-3
Teaching Hours:9
DETERMINATION OF STRESS INTENSITY FACTORS AND PLANE STRAIN FRACTURE TOUGHNESS:
 

Introduction, analysis and numerical methods, experimental methods, estimation of stress intensity factors. Plane strain fracture toughness test, The Standard test. Size requirements. Non-linearity. Applicability. 

Unit-3
Teaching Hours:9
THE ENERGY RELEASE RATE, CRITERIA FOR CRACK GROWTH:
 

The crack resistance(R curve). Compliance, J integral. Tearing modulus. Stability.                        

Unit-4
Teaching Hours:9
ELASTIC PLASTIC FRACTURE MECHANICS:
 

Fracture beyond general yield. The Crack-tip opening displacement. The Use of CTOD criteria. Experimental determination of CTOD.Parameters affecting the critical CTOD.Use of J integral. Limitation of J integral.

Unit-4
Teaching Hours:9
DYNAMICS AND CRACK ARREST:
 

Crack speed and kinetic energy. Dynamic stress intensity and elastic energy release rate. Crack branching. Principles of crack arrest. Crack arrest in practice. Dynamic fracture toughness. 

Unit-5
Teaching Hours:9
FATIGUE CRACK PROPAGATION AND APPLICATIONS OF FRACTURE MECHANICS:
 

Crack growth and the stress intensity factor. Factors affecting crack propagation. variable amplitude service loading, Means to provide fail-safety, Required information for fracture mechanics approach, Mixed mode (combined) loading and design criteria. 

Text Books And Reference Books:

TEXT BOOKS

1. Elementary Engineering Fracture Mechanics - David Brock, Noordhoff.

2. Fracture Mechanics-Fundamental and Application - Anderson, T.L CRC press1998.

Essential Reading / Recommended Reading

1. Engineering fracture mechanics - S.A. Meguid Elsevier.

2. Fracture of Engineering Brittle Materials, Applied Science - Jayatilake, London.

3. Fracture and Fatigue Control in Structures - Rolfe and Barsom, , Prentice Hall.

4. Introduction to fracture mechanics - Karen Hellan, McGraw Hill.

5. Fundamentals of V fracture mechanisms - Knott, Butterworths. 

Evaluation Pattern

CIA 1=10 marks

CIA 2 (Mid semester)=25 marks

CIA 3=10 marks

Attendance-5marks

ESE-50M

MTME331E2 - ADVANCED METALLURGY (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

·        To learn the concepts of crystal structure.

·        To comprehend the trends of equilibrium diagram.

·        To learn the heat treatment of materials.

·        To understand the the process involved in ceramics.

To comprehend the surface coating methodology.

Learning Outcome

CO1: Demonstrate understanding of various aspects of crystal and lattice structure and their imperfection{L2}

CO2: Understand the importance of equilibrium diagrams and their uses in developing materials{L2}

CO3: Understand the process of heat treatment of different nonferrous alloys and tool steel and decide a heat treatment to acquire their desired properties{L2}

CO4: Demonstrate acquisition of knowledge of composites, ceramics, orthodontal and biomaterials{L4}

CO5: Understand the surface coating methods in tribological aspects.{L2}

Unit-1
Teaching Hours:9
CRYSTAL STRUCTURE
 

Aspects of Physical Metallurgy:Crystal structure, systems and Barvias lattices, Indexing of lattice planes (Miller’s Indices),Indexing of lattice directions, Co-ordination Number (Ligency), Density calculations andimperfections in crystals

Unit-2
Teaching Hours:9
EQULIBRIUM DIAGRAMS
 

Study of Equilibrium diagrams for Fe-C systems, Cu - Bronze alloys i.e. Cu:Zn, Cu:Sn,Cu:Al etc., Developments in metallic materials like HSLA state, maraging steels, dual phasedsteels, creep resisting steels, materials for high and low temperature applications, Nimerics,Inconels, Haste Alloys etc., Al, Ni alloys, Ti, Mg alloys.

Unit-3
Teaching Hours:9
HEAT TREATMENT & MATERIAL APPLICATIONS
 

PART-A: Heat Treatment of Nonferrous alloys, Heat Treatment of Tool steels           

PART-B:Orthodental materials, Bio material, Prosthetic materials, Nano materials, superconducting materials, sports materials.

Unit-4
Teaching Hours:9
COMPOSITES AND CERAMICS
 

Composites, ceramics, cermets, shape memory alloys their manufacturing techniques,advantages and limitations.

Unit-5
Teaching Hours:9
SURFACE COATINGS
 

Surface coatings and their tribological aspects. PVD, CVD, IVD ion implantation method.

Text Books And Reference Books:

T1. Engineering Metallurgy, R. A. Higgins, Viva Books Pvt. Ltd.

T2. Elements of Material Science and Engineering, Lawrence H., Van Vlack Addison-Wesley Publishing Company

T3. Principles of Material Science and Engineering, William F. Smith, McGraw-Hill

Book Co.

T4. Material Science, R. B. Gupta, Satya Publications, New Delhi.

Essential Reading / Recommended Reading

R1. A Text Book of Material Science and Metallurgy, O. P. Khanna, Dhanpat Rai and

Sons, New Delhi.

R2. Material Science and Engineering an Introduction, William D. Callister, Jr., John

Wiley and Sons Inc.

R3. Smithells Metals Reference Book, E. A. Brandes and G. B. Brook, Butterworth

Heinemann.

R4. Biomaterials and Bioengineering Handbook, Donald L. Wise, Marcel Dekker Inc.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME331E3 - MACHINE TOOL DESIGN (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

·        To understand the design consideration for the manufacturing and selection of tool.

·        To impart the knowledge of regulation of feed and speed rates in tool.

·        To facilitate the students to appreciate the fundamentals of machine tool structures and their requirements.

·        To design the guide ways, power screws, spindles and spindle support used in engineering applications.

To understand the dynamic consideration of the machine tool and there terminology.

Learning Outcome

CO1: Discuss the various machine tool drives and its working principle.{L2}

CO2: Explains the regulation and general consideration for the selection of tool.{L2}

CO3: Analyse the machine tool structure, Static and dynamic stiffness to design the bed and columns.{L4}

CO4: Design the guide ways, power screws, spindles and spindle support used in engineering applications.{ L4}

CO5: Apply the knowledge of dynamics to understand the characteristics of cutting process and stability analysis.{L3}

Unit-1
Teaching Hours:9
MACHINE TOOL DRIVE
 

working and auxiliary motion in machine, Machine tool drives, Hydraulic transmission, Mechanical transmission, General requirements of machine tool design, Layout of machine tools.

Unit-2
Teaching Hours:9
REGULATION OF SPEED AND FEED RATES
 

Aim of speed feed regulation, stepped regulation of speed, design of speed box, Design of feed box, Special cases of gear box design, Set stopped regulation of speed and feed rates.

Unit-3
Teaching Hours:9
DESIGN OF MACHINE TOOL STRUCTURE
 

Fundamentals of machine tool structures and their requirements, Design criteria of machine tool structure, Static and dynamic stiffness, Design of beds and columns, Design of housing models, Techniques in design of machine tool structure.

Unit-4
Teaching Hours:9
DESIGN OF GUIDE-WAYS AND POWER SCREWS
 

Function and type of guide-ways, design of slide-ways, Protecting devices for slide-ways, Design of power screws.          

Unit-5
Teaching Hours:9
DESIGN OF SPINDLES AND SPINDLE SUPPORTS
 

materials for spindles, design of spindles, Antifriction bearings, Sliding bearings.

Unit-5
Teaching Hours:9
DYNAMICS OF MACHINES TOOLS
 

General procedure of assessing dynamic stability of EES, Cutting processing, Closed loop system, Dynamic characteristics of cutting process, Stability analysis

Text Books And Reference Books:

T1. N.K. Mehta ,”Machine Tool Design”, New Delhi Tata Mcgraw-Hill Publishing Company 3rd Edition, 2017

T2. Machine Tool design Handbook - CMTI McGraw Hill Education; 1st edition, 2017.

T3. S.K. Basu and D.K. Palo, “Design of Machine Tools”, Allied Publishers, New Delhi, 2008. 

Essential Reading / Recommended Reading

R1. N. K. Mehta, “Machine Tool Design & Numerical Control”, McGraw Hill, New Delhi, 2004.

R2. G.C. Sen and A. Bhattacharya, “Machine Tools”, Central Book Agency, New Delhi (1989).

R3. N.S. Acherkhan, “Machine Tool Design”, Mir Publishers, New Delhi, 1983.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME331E4 - VIBRATION AND CONDITION MONITORING (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 
At the end of the course:
1. To study the basic concepts of vibration.
2. To characterize the free and forced vibrations of damped and undamped single degree of
freedom systems.
3. To understand the transient vibration response of a single degree of freedom system.
4. To study various vibration measuring instruments.
5. To study and characterize the random vibrations.
6. To characterize the continuous systems.
7. To study the basic principles of maintenance and condition monitoring.

 

Learning Outcome

CO1: Explain the basics of vibrations and determine the equations of motion for free & forced vibrations of single-degree-of-freedom systems and to find their solution. (L2)

CO2: Determine the response of a single degree of freedom system subjected to various types of input forces. (L2)

CO3: Apply fundamentals of vibrations to its measurement and analysis (L2)

CO4: Explain the working principles of continuous systems and develop the governing equations(L2)

CO5: Apply these concepts of condition and vibration monitoring in various machines (L3)

Unit-1
Teaching Hours:9
Introduction
 

Elements of vibratory system, examples of vibratory motions, simple harmonic motion, degrees of freedom.

Unit-1
Teaching Hours:9
System with One Degree of Freedom
 

Equations of motion by Newton’s method & Energy method, general solution, frequency response method. Undamped free vibration and damped free vibration.

Unit-2
Teaching Hours:9
Forced Vibration of Single Degree of Freedom System
 

Undamped forced vibration – harmonic excitation, damped forced vibration – harmonic excitation, rotating and reciprocating unbalance, vibration isolation and transmissibility, system attached to moving support.

Unit-2
Teaching Hours:9
Transient Vibration of Single Degree of Freedom System
 

Introduction, Derivation of Convolution Integral – response due to unit impulse, Response due to a General Excitation, Excitations Whose Forms Change at Discrete Times, Transient Motion Due to Base Excitation, Laplace Transform Solutions, Transfer Functions, Numerical Methods, Shock Spectrum, Vibration Isolation for Short Duration Pulses.

Unit-3
Teaching Hours:9
Random Vibrations
 

Introduction, random variables and random processes, probability distribution, mean value and standard deviation, correlation functions of a random process, stationary random process, Gaussian random process, Fourier transforms and response, power spectral density.

Unit-3
Teaching Hours:9
Vibration Measurements
 

Introduction, transducers, vibration measuring instruments – vibrometers and accelerometers, frequency measuring instruments, vibration exciters, signal analysis.

Unit-4
Teaching Hours:9
Continuous Systems
 

Introduction, continuous system – a simple exposition, separation of time and space variables, problems governed by wave equation: longitudinal vibrations of rods & torsional vibration of shaft, lateral vibration of beams

Unit-5
Teaching Hours:9
Vibration Monitoring
 

Principles of vibration monitoring, misalignment detection, eccentricity detection, cracked shaft, bowed and bent shaft, unbalanced shaft, looseness, rub, bearing defects, gear fault, faults in fluid machines and rotating machines.

Unit-5
Teaching Hours:9
Condition Monitoring
 

Principles of Maintenance: Introduction, reactive maintenance, preventive maintenance, predictive maintenance, bath tub curve, failure modes effect and criticality analysis

Text Books And Reference Books:

T1. Francis S. Tse, Ivan E. Morse, Rolland T. Hinkle, “Mechanical Vibrations - Theory and Applications”, Allyn and Bacon, Inc., 2004, ISBN-10: 8123908466 / ISBN-13: 978-8123908465.

 

T2. S. Graham Kelly, “Mechanical Vibrations – Thoery and Applications”, Cengage Learning, 2012, ISBN-10: 1-4390-6214-5 / ISBN-13: 978-1-4390-6214-2.

Essential Reading / Recommended Reading

R1. Amiya R. Mohanty, “Machinery Condition Monitoring”, CRC Press, 2015, ISBN-13: 978-1-4665-9305-3.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME332E2 - INDUSTRIAL SAFETY (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

Safety is one of the key dimensions of engineering asset management. Safety by design or prevention through design is in the core for maintaining engineering systems safe. The objective of this course is to impart knowledge on different facets and aspects of engineering systems safety, focusing on tools, techniques and methodologies needed for prevention of occurrences of unsafe operations and accidents under different industrial settings. Upon completion of the course, the students will be equipped with concepts of engineering systems safety, dimensions of engineering systems safety, safety design and analysis mathematics, design for engineering systems safety and control for safety, and integrating safety with other operational goals such as quality and reliability.

Learning Outcome

CO1: Understand the terminologies related Industrial Safety (L2)

CO2: Understand the Fundamentals of maintenance engineering. (L2)

CO3: Study the phenomenon of Wear and Corrosion and their prevention(L2)

CO4: Understand the Fault tracing concepts and its importance(L2)

CO5: Understand the concepts of Periodic and preventive maintenance (L2)

Unit-1
Teaching Hours:9
Industrial safety
 

Accident,causes,types,resultsandcontrol,mechanicalandelectricalhazards,types,causesandpreventivesteps/procedure,describesalientpointsoffactoriesact1948forhealthandsafety,washrooms,drinkingwaterlayouts,light,cleanliness,fire,guarding,pressurevessels,etc,Safetycolorcodes.Firepreventionandfirefighting,equipmentandmethods.

Unit-2
Teaching Hours:9
Fundamentals of maintenance engineering
 

Definitionandaimofmaintenanceengineering,Primaryandsecondaryfunctionsandresponsibilityofmaintenancedepartment,Typesofmaintenance,Typesandapplicationsoftoolsusedformaintenance,Maintenancecost&itsrelationwithreplacementeconomy,Servicelifeofequipment.

Unit-3
Teaching Hours:9
Wear and Corrosion and their prevention
 

Wear-types,causes,effects,wearreductionmethods,lubricants-typesandapplications,Lubricationmethods,generalsketch,workingandapplications,i.Screwdowngreasecup,ii.Pressuregreasegun,iii.Splashlubrication,iv.Gravitylubrication,v.Wickfeedlubricationvi.Sidefeedlubrication,vii.Ringlubrication,Definition,principleandfactorsaffectingthecorrosion.Typesofcorrosion,corrosionpreventionmethods.

Unit-4
Teaching Hours:9
Fault tracing
 

Faulttracing-conceptandimportance,decisiontreeconcept,needandapplications,sequenceoffaultfindingactivities,showasdecisiontree,drawdecisiontreeforproblemsinmachinetools,hydraulic,pneumatic,automotive,thermalandelectricalequipmentslike,i.Anyonemachinetool,ii.Pumpiii.Aircompressor,iv.Internalcombustionengine,v.Boiler,vi.Electricalmotors,Typesoffaultsinmachinetoolsandtheirgeneralcauses.

Unit-5
Teaching Hours:9
Periodic and preventive maintenance
 

Periodicinspection-conceptandneed,degreasing,cleaningandrepairingschemes,overhaulingofmechanicalcomponents,overhaulingofelectricalmotor,commontroublesandremediesofelectricmotor,repaircomplexitiesanditsuse,definition,need,stepsandadvantagesofpreventivemaintenance.Steps/procedureforperiodicandpreventivemaintenanceof:I.Machinetools,ii.Pumps,iii.Aircompressors,iv.Dieselgenerating(DG)sets,Programandscheduleofpreventivemaintenanceofmechanicalandelectricalequipment,advantagesofpreventivemaintenance.Repaircycleconceptandimportance

Text Books And Reference Books:

T1.MaintenanceEngineeringHandbook,Higgins&Morrow,DaInformationServices.

T2.MaintenanceEngineering,H.P.Garg,S.ChandandCompany.

Essential Reading / Recommended Reading

R1. Pump-hydraulic Compressors, Audels, Mcgrew Hill Publication

R2. Foundation Engineering Handbook, Winterkorn, Hans, Chapman & Hall London.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME332E3 - OPERATIONS RESEARCH (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:3
Max Marks:100
Credits:3

Course Objectives/Course Description

 
  • To provide students with basic skills and knowledge of operations research and its application
  • To introduce students to practical application of operations research
  • To formulate a real-world problem as a mathematical programming model.
  • To provide the students with opportunity of using various software package for solving problems.

Learning Outcome

CO1: Explain the applications of Operations Research and mathematical modeling in solving industrial problems(L2)

CO2: Solve Engineering and managerial situations as LPP. (L3)

CO3: Apply the concept of non-linear programming (L3)

CO4: Solve for the congestions and delays of waiting in line using Queuing Theory.(L3)

CO5: Solve for competitive situations using analytical and graphical methods and assignments of jobs to facilities using Sequencing methodology.(L3)

Unit-1
Teaching Hours:9
UNIT-I
 

Optimization Techniques, Model Formulation, models, General L.R Formulation, Simplex Techniques, Sensitivity Analysis, Inventory Control Models

Unit-2
Teaching Hours:9
UNIT-II
 

FormulationofaLPP-Graphicalsolutionrevisedsimplexmethod-dualitytheory-dualsimplexmethod-sensitivityanalysis-parametricprogramming

Unit-3
Teaching Hours:9
UNIT-III
 

Nonlinearprogrammingproblem-Kuhn-Tuckerconditionsmincostflowproblem-maxflowproblem-CPM/PERT

Unit-4
Teaching Hours:9
UNIT-IV
 

Schedulingandsequencing-singleserverandmultipleservermodels-deterministicinventorymodels-Probabilisticinventorycontrolmodels-GeometricProgramming.

Unit-5
Teaching Hours:9
UNIT-V
 

CompetitiveModels,SingleandMulti-channelProblems,SequencingModels,DynamicProgramming,FlowinNetworks,ElementaryGraphTheory,GameTheorySimulation

Text Books And Reference Books:

1: P K Gupta and D S Hira,  “Operations Research”, 6th edition, Chand Publications, New Delhi , 2014.

2: Taha H A, “Operations Research”, 10th edition, Pearson Education, 2016

3: El-Ghazali Talbi, “Metaheuristics: From Design to Implementation”, 2013 Edition,     Wiley  Publishers, ISBN-13: 978-0470278581

4: Kalavathy.S, “Operation research”, 4th Edition, Vikas Publishing House, 2013 ISBN:978-93-259-6347-4

5: J.C.Pant,IntroductiontoOptimisation:OperationsResearch,JainBrothers,Delhi, 2008. 

Essential Reading / Recommended Reading

1: HitlerLibermannOperationsResearch:McGrawHillPub.2009

2: Pannerselvam,OperationsResearch:PrenticeHallofIndia2010

3: HarveyMWagner,PrinciplesofOperationsResearch:PrenticeHallofIndia2010

4: S.D. Sharma, “Operations Research”, Ledarnath Ramanath & Co, 2002.

Evaluation Pattern

CIA1-10

CIA2-25

CIA3-10

ATTENDANCE-5

ESE-50

MTME332E4 - COST MANAGEMENT OF ENGINEERING PROJECTS (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 
  • To understand the cost concepts in decision making.
  • To define project and classify the types of project.
  • To understand the various cost effective methods.
  • To learn various types of optimization Techniques. 

Learning Outcome

CO1: Understand and make use of the framework of costing in various managerial decisions(L2)

CO2: Understand the framework of accounting systems and financial reporting(L2)

CO3: Understand the essentials of project management(L2)

CO4: Describeinsight into treasury management, understand risk, their mitigation and management(L2)

CO5: Describe working knowledge on indirect taxes and application of the same in the industry(L2)

Unit-1
Teaching Hours:9
Introduction and Overview of the Strategic Cost Management Process
 

conceptsindecision-making;Relevantcost,Differentialcost,IncrementalcostandOpportunitycost.ObjectivesofaCostingSystem;Inventoryvaluation;CreationofaDatabaseforoperationalcontrol;ProvisionofdataforDecision-Making.

Unit-2
Teaching Hours:9
Project
 

Meaning,Differenttypes,whytomanage,costoverrunscentres,variousstagesofprojectexecution:conceptiontocommissioning.Projectexecutionasconglomerationoftechnicalandnonetechnicalactivities.DetailedEngineeringactivities.PreprojectexecutionmainclearancesanddocumentsProjectteam:Roleofeachmember

Unit-2
Teaching Hours:9
Project site
 

Datarequiredwithsignificance.Projectcontracts.Typesandcontents.ProjectexecutionProjectcostcontrol.BarchartsandNetworkdiagram.Projectcommissioning:mechanicaland process. 

Unit-3
Teaching Hours:9
Cost Behavior and Profit Planning Marginal Costing
 

DistinctionbetweenMarginalCostingandAbsorptionCosting;Break-evenAnalysis,Cost-Volume-ProfitAnalysis.Variousdecision-makingproblems.StandardCostingandVarianceAnalysis.Pricingstrategies:ParetoAnalysis.Targetcosting,LifeCycleCosting.Costingofservicesector, Just-in-timeapproach. 

Unit-4
Teaching Hours:9
Planning Technique
 

MaterialRequirementPlanning,EnterpriseResourcePlanning,TotalQualityManagementandTheoryofconstraints.Activity-BasedCostManagement,BenchMarking;BalancedScoreCardandValue-ChainAnalysis.

Unit-4
Teaching Hours:9
Budgetary Control
 

FlexibleBudgets;Performancebudgets;Zero-basedbudgets.MeasurementofDivisionalprofitabilitypricingdecisionsincludingtransferpricing.

Unit-5
Teaching Hours:9
Quantitative techniques for cost management
 

LinearProgramming,PERT/CPM,Transportationproblems,Assignmentproblems,Simulation,LearningCurveTheory.

Text Books And Reference Books:

T1. N.D. Vohra, Quantitative Techniques in Management, Tata McGraw Hill Book Co. Ltd.

T2. Ashish K. Bhattacharya, Principles & Practices of Cost Accounting A. H. Wheeler publisher.

T3. Robert S Kaplan Anthony A. Alkinson, Management & Cost Accounting.

Essential Reading / Recommended Reading

R1. Cost Accounting A Managerial Emphasis, Prentice Hall of India, New Delhi.

R2. Charles T. Horngren and George Foster, Advanced Management Accounting.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME332E5 - MECHANICS OF COMPOSITE MATERIALS (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 
  • To understand the basic concepts and difference between composite materials with conventional materials.
  • To understand role of constituent materials in defining the average properties and response of composite materials on macroscopic level.
  • To apply knowledge for finding failure envelopes and stress-strain plots of laminates.
  • To develop a clear understanding to utilize subject knowledge using computer programs to solve problems at structural level.

Learning Outcome

CO1: Understand the basic concepts and difference between composite materials with conventional materials.(L2)

CO2: Understand role of constituent materials in defining the average properties and response of composite materials on macroscopic level.(L2)

CO3: Apply knowledge for finding failure envelopes and stress-strain plots of laminates.(L3)

CO4: Develop a clear understanding to utilize subject knowledge using computer programs to solve problems at structural level.(L3)

CO5: Analyse problems on micromechanical behaviour of lamina.(L4)

Unit-1
Teaching Hours:9
INTRODUCTION TO COMPOSITE MATERIALS
 

Definition, Classification, Types of matrices material and reinforcements, Characteristics & selection, Fiber composites, laminated composites, Particulate composites, Prepegs, and sandwich construction.

Unit-2
Teaching Hours:9
MACRO MECHANICS OF A LAMINA
 

Hooke's law for different types of materials, Number of elastic constants, Derivation of nine independent constants for orthotropic material, Two - dimensional relationship of compliance and stiffness matrix. Hooke's law for two-dimensional angle lamina, engineering constants - Numerical problems. Invariant properties. Stress-Strain relations for lamina of arbitrary orientation, Numerical problems.

Unit-3
Teaching Hours:9
MICRO MECHANICAL ANALYSIS OF A LAMINA
 

Introduction, Evaluation of the four elastic moduli, Rule of mixture, Numerical problems

Unit-3
Teaching Hours:9
BIAXIAL STRENGTH THEORIES
 

Maximum stress theory, Maximum strain theory, Tsa-Hill theory, Tsai, Wu tensor theory, Numerical problems

Unit-4
Teaching Hours:9
MACRO MECHANICAL ANALYSIS OF LAMINATE
 

Introduction, code, Kirchoff hypothesis, CL T, A, B, and D matrices (Detailed derivation) Engineering constants, Special cases of laminates, Numerical problems

Unit-4
Teaching Hours:9
MANUFACTURING
 

Lay up and curing - open and closed mould processing, Hand lay, Up techniques, Bag moulding and filament winding. Pultrusion, Pulforming, Thermoforming, Injection moulding, Cutting, Machining and joining, tooling, Quality assurance, Introduction, material qualification, Types of defects, NDT methods.

Unit-5
Teaching Hours:9
METAL MATRIX COMPOSITES
 

Re-inforcement materials, Types, Characteristics and selection, Base metals, Selection, Applications.

Unit-5
Teaching Hours:9
APPLICATION DEVELOPMENTS
 

Aircrafts, missiles, Space hardware, automobile, Electrical and Electronics, Marine, Recreational and sports equipment-future potential of composites. 

Text Books And Reference Books:

T1. Robert M. Jones, “Mechanics of Composite Materials”, Taylor and Francis, Inc., 1999

T2. Mazumdar S. K., “Composaite Manufacturing – Materials, Product and Processing Engineering”, CRC Press, Boca Raton, 02.

T3. Madhujit Mukhopadhyay, “Mechanics of Composite Materials and Structures”, University Press, 04.

Essential Reading / Recommended Reading

R1. Isaac M. Daniels, Ori Ishai, “Engineering Mechaincs of Composite Materials”, Oxford University Press, 1994.

R2. Bhagwan D. Agarwal, Lawrence J. Broutman, “Analysis and Performance of fiber composites”, John Wiley and Sons, Inc. 1990.

R3. Mathews, F. L. and Rawlings, R. D., “Composite Materials: Engineering and Science”, CRC Press, Boca Raton, 03.

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME332E6 - RENEWABLE ENERGY (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 

The course discusses the use of solar (thermal and photovoltaic), hydro-electric, wind, geothermal, ocean thermal, wave, tidal and geothermal energy, as well as energy from biomass. The use of fuel-cell systems is dealt with. Issues relevant to energy efficiency and energy storage are discussed. The potential of using renewable energy technologies as a replacement for conventional technologies are discussed.

Learning Outcome

CO1: Classify and compare the various solar thermal systems like.{L2}

CO2: Examine the working of wind, Tidal and wave energy with respect to their types, advantages and disadvantages. {L2}

CO3: Describe the concept of thermoelectric system and classify the various biomass and biofuels for Thermo-chemical conversion, direct combustion, biomass gasification, pyrolysis and liquefaction, biochemical conversion and anaerobic digestion. {L2}

CO4: Classify and apply the concept of vapour dominated and liquid dominated system in geothermal energy. To describe the MHD open and closed systems. {L3}

CO5: Classify and compare the acidic and alkaline hydrogen-oxygen fuel cells, and to explain the Hydrogen production, storage and utilization. {L3}

Unit-1
Teaching Hours:9
SOLAR ENERGY
 

Global and National scenarios, Form and characteristics of renewable energy sources, Solar radiation, its measurements and prediction, Solar thermal collectors, flat plate collectors, concentrating collectors, Basic theory of flat plate collectors, solar heating of buildings, solar still, solar water heaters, solar driers; conversion of heat energy into mechanical energy, solar thermal power generation systems

Unit-1
Teaching Hours:9
SOLAR PHOTOVOLTAIC
 

Principle of photovoltaic conversion of solar energy, types of solar cells and fabrication. Photovoltaic applications: battery charger, domestic lighting, street lighting, water pumping, power generation schemes

Unit-2
Teaching Hours:9
WIND ENERGY
 

Atmospheric circulations, classification, factors influencing wind, wind shear, turbulence, wind speed monitoring, Betz limit, WECS: classification, characteristic, applications

Unit-2
Teaching Hours:9
TIDAL AND WAVE ENERGY
 

Energy from tides, basic principle of tidal power, single basin and double basin tidal power plants, advantages, limitation and scope of tidal energy. Wave energy and power from wave, wave energy conversion devices, advantages and disadvantages of wave energy.

Unit-3
Teaching Hours:9
THERMOELECTRIC SYSTEMS
 

Kelvin relations, power generation, Properties of thermoelectric materials, Fusion Plasma generators

Unit-3
Teaching Hours:9
BIOMASS AND BIOFUELS
 

Biomass resources and their classification, Biomass conversion processes, Thermo-chemical conversion, direct combustion, biomass gasification, pyrolysis and liquefaction, biochemical conversion, anaerobic digestion, types of biogas Plants, applications, alcohol production from biomass, bio diesel production, Urban waste to energy conversion-Biomass energy program in India

Unit-4
Teaching Hours:9
MAGNETO HYDRO DYNAMIC POWER GENERATION
 

Introduction principles of MHD power generation, MHD open and closed systems, power output from MHD generators, design problems of MHD generation, gas conductivity, seeding

Unit-4
Teaching Hours:9
GEOTHERMAL ENERGY
 

Introduction, classification of geothermal systems vapour dominated, liquid dominated system, total flow concept, petrothermal systems, magma resources, applications of geothermal operational & environmental problems

Unit-5
Teaching Hours:9
HYDROGEN ENERGY
 

Introduction, Hydrogen Production methods, Hydrogen storage, hydrogen transportation, utilization of hydrogen gas, hydrogen as an alternative fuel for vehicles.

Unit-5
Teaching Hours:9
ELECTROCHEMICAL EFFECTS AND FUEL CELLS
 

Principle of operation of an acidic fuel cell, Reusable cells, Ideal fuel cells, Other types of fuel cells, Comparison between acidic and alkaline  hydrogen-oxygen fuel cells, Efficiency and EMF of fuel cells, Operating characteristics of fuel cells, Advantages of fuel cell power plants, Future potential of fuel cells

Text Books And Reference Books:

T1. Rai.G.D, “Non-Conventional Energy Sources”, 4 th edition,Khanna Publishers, New Delhi, 2011

T2. Domkundwar.V.M, Domkundwar.A.V, “Solar energy and Non-conventional sources of energy”,1st edition, Dhanpat rai & Co. (P) Ltd, New Delhi, 2010

Essential Reading / Recommended Reading

R1. S P Sukhatme, “Solar Energy: Principles of Thermal Collection and Storage”, 2ND EDITION , Tata McGraw Hill, 15TH REPRINT 2006

R2. J.A.Duffie and W.A.Beckman, “Solar Engineering of Thermal processes”,4TH edition,John Wiley, New York, April 2013

R3. Bockris and Srinivasan,“Fuel Cells”, Springer; Softcover reprint of hardcover 1st ed. 2006 edition

R4. Godfrey Boyle, “Renewable energy”, 2nd edition, Oxford University Press, 2010

R5. Khan.B, “Non-conventional Sources of energy”, 2nd edition, New Delhi, Tata McGraw Hill, 2009

R6. Tiwari.G.N, Ghosal.M.K, “Fundamentals of renewable energy sources”,1 st edition,UK, Alpha Science International Ltd, 2007

R7.Twidell.J.W and Weir.A.D, “Renewable Energy Resources”,2nd edition, UK, E.&F.N.Spon Ltd, 2015

Evaluation Pattern

CIA-50Marks

ESE-50Marks

MTME332E7 - FUNDAMENTALS OF PYTHON PROGRAMMING (2023 Batch)

Total Teaching Hours for Semester:45
No of Lecture Hours/Week:4
Max Marks:100
Credits:3

Course Objectives/Course Description

 
At the end of the course, the students would be able to
1. Understand the important libraries of Python, and its recommended programming styles and
idioms.
2. Learn core Python scripting elements such as variables and flow control structures.
3. Develop applications using Python for robotics.

 

Learning Outcome

CO1: To discuss the structure and components of a Python program. (L2)

CO2: To explain loops and decision statements in Python. (L2)

CO3: To illustrate class inheritance in Python for reusability (L2)

CO4: To select lists, tuples, and dictionaries in Python programs. (L3)

CO5: To assess object‐oriented programs with Python classes. (L3)

Unit-1
Teaching Hours:9
Introduction to Python, Data Types, Expressions
 

Introduction to Python Programming – Running Code in the Interactive Shell, Input, Processing and Output, Editing, Saving and Running a Script -Data Types, String Literals, Escape Sequences, String Concatenation, Variables and the Assignment Statement - Numeric Data Types Module, The Main Module, Program Format and Structure and Running a Script from a Terminal Command Prompt

Unit-2
Teaching Hours:9
Loops and Expressions
 

Iteration - for loop - Selection - Boolean Type, Comparisons, and Boolean Expressions, if-else Statements, One-Way Selection Statements, Multi-way if Statements, Logical Operators and Compound Boolean Expressions, Short-Circuit Evaluation and Testing Selection Statements - Conditional Iteration - while loop.

Unit-3
Teaching Hours:9
Strings and Text Files
 

Strings - Accessing Characters and Substrings in Strings, Data Encryption, Strings and Number Systems and String Methods - Text Files - Text Files and Their Format, Writing Text to a File, Writing Numbers to a File, Reading Text from a File, Reading Numbers from a File and Accessing and Manipulating Files and Directories on Disk

Unit-4
Teaching Hours:9
Lists and Dictionaries
 

Lists - List Literals and Basic Operators, Replacing an Element in a List, List Methods for Inserting and Removing Elements, Searching and Sorting a List, Mutator Methods and the Value None, Aliasing and Side Effects, Equality and Tuples - Defining Simple Functions - Syntax, Parameters and Arguments, return Statement, Boolean Functions and main function, Dictionaries – Dictionary Literals, Adding Keys and Replacing Values, Accessing Values, Removing Keys and Traversing a Dictionary.

Unit-5
Teaching Hours:9
Design with Functions and Design with Classes
 

Design with Functions - Functions as Abstraction Mechanisms, Problem Solving with Top-Down Design, Design with Recursive Functions and Managing a Program’s Namespace –

Design with Classes- Objects and Classes, Data Modellling and Structuring Classes with Inheritance and Polymorphism.

Case studies: Object sensing and detection - Pick and Place Robot – Path planning – Unmanned vehicle - Control Robots - Joints and Degrees of Freedom.

Text Books And Reference Books:
1. Paul Barry, Head First Python 2e, O′Reilly, 2nd Revised edition, 2016, ISBN-13: 978-
1491919538.
2. Kenneth A. Lambert, Martin Osborne, Fundamentals of Python: From First Programs
Through Data Structures, Course Technology, Cengage Learning, 2010, ISBN-13: 978-1-4239-
0218-8

 

Essential Reading / Recommended Reading
  1. Zed A. Shaw, Learn Python The Hard Way, Addison-Wesley, Third Edition, 2014, ISBN-13:

978-0-321-88491-6.

  1. Dave Kuhlman, A Python Book: Beginning Python, Advanced Python, and Python Exercises,

2013, ISBN: 9780984221233.

  1. 3. Kent D Lee, Python Programming Fundamentals, Springer-Verlag London Limited, 2011, ISBN 978-1-84996-536-1.
  2. Diwakar Vaish, Python Robotics Projects, Packtpub, 2018, ISBN 978-1-78883-292-2
  3. Nicholas H.Tollervey, Programming with MicroPython- Embedded Programming with Micrcontrollers& Python, O’Reilly, 2018.
Evaluation Pattern

CIA-50marks

ESE- 50Marks

MTME381 - DISSERTATION PHASE I (2023 Batch)

Total Teaching Hours for Semester:300
No of Lecture Hours/Week:20
Max Marks:100
Credits:10

Course Objectives/Course Description

 

Project work Phase-I includes identifying the prolem, literature review and necessary gruound work so as to continue it as Phase-II during IV semester.

Presentations on these are to be given as per the schedule announced by the department

Learning Outcome

CO1: Able to complete the project

Unit-1
Teaching Hours:300
Project
 

§  Continuous Internal Assessment:100 Marks

¨       Presentation assessed by Panel Members

¨       Assessment by the Guide

¨       Project  Progress Reports

Text Books And Reference Books:

Journals

Essential Reading / Recommended Reading

journals

Evaluation Pattern

Project progress report 50 Marks

Presentation 50 Marks

 

 

MTME481 - DISSERTATION PHASE II (2023 Batch)

Total Teaching Hours for Semester:480
No of Lecture Hours/Week:32
Max Marks:200
Credits:16

Course Objectives/Course Description

 

Project work Phase-I includes identifying the prolem, literature review and necessary gruound work so as to continue it as Phase-II during IV semester.

Presentations on these are to be given as per the schedule announced by the department

Learning Outcome

CO1: Enabling the student for identify the problems in the existing systems of their proposed area and define the objectives of their proposed work.

CO2: Develop a skill for handling multiple situations, practical problems, analysing team work and communication abilities.

CO3: Compile theory with practice and carry out performance objectives on strong work ethics, persistence, adaptability and critical thinking.

CO4: Analyse work environment and create solution to problems.

Unit-1
Teaching Hours:480
Project
 

§  Continuous Internal Assessment:100 Marks

¨       Presentation assessed by Panel Members

¨       Assessment by the Guide

¨       Project  Progress Reports

Unit-1
Teaching Hours:480
Dissertation
 

End Semester Examination:100 Marks

¨      Viva Voce

¨      Demonstration

¨      Project Report

§  Dissertation (Exclusive assessment of Project Report): 100 Marks

¨      Internal Review : 50 Marks

¨      External Review : 50 Marks

Text Books And Reference Books:

Journal papers

Essential Reading / Recommended Reading

Journal papers

Evaluation Pattern

CIA-100

ESE-100