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Diploma in Mechanical Engineering

program-details

A 3 year skill oriented program covering mechanics, manufacturing, thermal engineering, and machine design with strong workshop and laboratory training.

Industry Immersion

Industrial training, plant visits, expert talks, and an industry based final project.

eligibility criteria

10th pass with 50% aggregate marks (Mathematics, Science, English) or equivalent.

Admission criteria

Merit-based or through CTSET entrance test.

Duration

3 Years

Curriculum

1ST SEMESTER SUBJECTS

This course develops advanced language and professional communication competencies through functional grammar, vocabulary enrichment, reading comprehension, and structured writing. It emphasizes effective business and official correspondence, report writing, notices, agendas, minutes, and professional documentation, enabling students to communicate clearly and appropriately in academic and workplace contexts.
Course Outcome:
CO1: Overcome communication barriers and converse properly
CO2: Apply competence for better application of grammar in different contexts
CO3: Manipulate necessary listening skills to follow and comprehend discourse such as lectures, conversations, interviews, and discussions
CO4: Develop coherence, cohesion, and competence in oral discourse through intelligible pronunciation
CO5: Illustrate the different aspects of communication using the four macro skills: reading, writing, speaking, and Listening skills, according to the professional bent
CO6: Construct effective grammatically correct paragraphs

This practical course develops effective oral, listening, and interpersonal communication through group discussions, speeches, seminars, debates, telephonic conversations, and paper presentations. It emphasizes pronunciation, voice modulation, communication etiquette, listening comprehension, confidence, and integrated application of professional communication skills.
Course Outcome:
CO1: Overcome communication barriers and converse properly
CO2: Apply competence for better application of grammar in different contexts
CO3: Manipulate necessary listening skills to follow and comprehend discourse such as lectures, conversations, interviews, and discussions
CO4: Develop coherence, cohesion, and competence in oral discourse through intelligible pronunciation

This course develops mathematical competencies required for engineering applications through differential calculus, applications of differentiation, integral calculus, differential equations, numerical integration, and operations research. It emphasizes analytical reasoning, mathematical problem-solving, optimization, and the application of mathematical techniques to engineering and real-world problems.
Course Outcome:
CO1: Apply Complex Number and its representation for two dimensional designing and related calculations.
CO2: Apply the basic concepts of permutation and combination to find out various ways or arrangements possible for a particular problem.
CO3: Apply binomial theorem to find approximate value of certain expressions and extracting roots of certain expressions.
CO4: Design and solve related problems like constructions of roads, dams, bridges and calculation of height, distance, elevation
CO5: Write the equations of a geometric shape used in many engineering problems such as straight line and circle. Optimize the utilization of resources by applying concepts of coordinate geometry

This course introduces fundamental concepts of optics, electrostatics, current electricity, electromagnetism, modern physics, and semiconductor physics. It develops an understanding of physical principles and their applications in optical systems, electrical circuits, lasers, fibre optics, semiconductor devices, and other engineering and technological systems.
Course Outcome:
CO1: Identify physical quantities, parameters and select their units for use in engineering solutions and make measurements with accuracy by optimising different types of errors.
CO2: Solve difficult problems (walking of man, horse and cart problem, flying of bird/ aircraft, etc.)
CO3: Analyse and design banking of roads/railway tracks and apply conservation of momentum principle to Explain rocket propulsion, recoil of gun etc.
CO4: Define work, energy and power and their units. Drive work, power and energy relationship and solve problems about work and power.
CO5: Describe the viscosity of liquids, coefficient of viscosity and the various factors affecting its value.

This laboratory course provides practical experience in verifying and applying fundamental concepts of optics, electricity, electromagnetism, semiconductor devices, and laser physics. Through experiments involving optical instruments, electrical laws, resistance measurements, CROs, PN junction diodes, diffraction, and lasers, students develop experimental, measurement, analytical, and data interpretation skills.
Course Outcome:
CO1: Identify physical quantities, parameters and select their units for use in engineering solutions and make measurements with accuracy by optimising different types of errors.
CO2: Solve difficult problems (walking of man, horse and cart problem, flying of bird/ aircraft, etc.)
CO3: Analyse and design banking of roads/railway tracks and apply conservation of momentum principle to Explain rocket propulsion, recoil of gun etc.
CO4: Define work, energy and power and their units. Drive work, power and energy relationship and solve problems about work and power.

This course covers the basic principles of chemistry and their applications in engineering. It includes water treatment, corrosion, fuels, lubricants, polymers, materials and chemical processes relevant to engineering applications.
Course Outcome:
CO1: Explain the fundamental concepts of chemistry relevant to engineering applications.
CO2: Analyze the properties and treatment methods of engineering materials and water.
CO3: Explain the principles of corrosion, fuels, lubricants and polymers used in engineering.
CO4: Apply chemical principles to solve basic engineering-related problems.
CO5: Evaluate the role of chemistry in material selection, environmental protection and sustainable engineering.

This laboratory provides practical understanding of fundamental chemical principles through experiments. Students perform experiments related to water quality, hardness, pH, corrosion, fuels and analysis of common engineering materials.
Course Outcome:
CO1: Perform basic chemical experiments using standard laboratory procedures.
CO2: Determine the physical and chemical properties of water and other materials.
CO3: Analyze samples using appropriate chemical testing and measurement techniques.
CO4: Interpret experimental observations and calculate relevant chemical parameters.
CO5: Apply laboratory safety practices and prepare experimental reports based on test results.

This course introduces the fundamentals of information technology and computer systems. It covers computer hardware and software, operating systems, networking, internet applications, databases, cybersecurity and basic digital tools used in engineering.
Course Outcome:
CO1: Explain the basic concepts and components of computer and information technology systems.
CO2: Apply operating systems, word processing, spreadsheets and presentation tools for basic tasks.
CO3: Explain the fundamentals of computer networks, internet and digital communication.
CO4: Apply basic database and information management concepts in engineering applications.
CO5: Identify common cybersecurity threats and apply basic measures for safe and secure digital practices.

This practical course develops graphical communication, visualization, and technical drawing skills required in engineering practice. It covers drawing standards, dimensioning, scales, orthographic projections, sectional views, isometric views, engineering symbols, and introductory CAD, enabling students to prepare and interpret accurate engineering drawings.
Course Outcome:
CO1: Apply BIS standards, drawing instruments, lettering practices, and dimensioning principles in engineering drawings.
CO2: Construct engineering scales and prepare orthographic projections of points and straight lines.
CO3: Develop orthographic projections of plane surfaces and engineering solids using first angle and third-angle projection methods.
CO4: Prepare sectional views, surface developments, and isometric views of engineering components.
CO5: Use engineering symbols and CAD software to prepare basic engineering drawings

This practical course introduces students to fundamental engineering workshop processes, tools, equipment, materials, and safety practices. Students gain practical exposure to welding, fitting, sheet-metal work, electrical wiring, carpentry, smithy operations, CAD modelling, additive manufacturing, and 3D printing, developing precision, workmanship, problem-solving, and safety consciousness.
Course Outcome:
CO1: Apply safety practices and use appropriate workshop tools, equipment and materials for welding operations.
CO2: Perform fitting and sheet metal operations to manufacture simple engineering jobs according to given specifications.
CO3: Carry out basic electrical wiring and carpentry operations using standard tools, equipment and workshop practices.
CO4: Perform basic forging and heat-treatment operations using smithy tools and equipment.
CO5: Develop 2D/3D CAD models and demonstrate basic additive manufacturing and 3D printing techniques for engineering applications.

This course develops an entrepreneurial mindset through self-awareness, creativity, innovation, opportunity recognition, problem-solving, communication, teamwork, leadership, and professional ethics. Students are introduced to the startup ecosystem, design thinking, business models, prototyping, value propositions, and idea pitching to encourage solution-oriented thinking and entrepreneurial initiative.
Course Outcome:
CO1: Demonstrate self-awareness, confidence and growth mindset.
CO2: Apply creativity and innovation tools to generate ideas and solutions.
CO3: Identify opportunities through analysis of real-life and community problems.
CO4: Demonstrate effective communication, teamwork and leadership skills.
CO5: Explain entrepreneurship concepts, startup ecosystem and support systems.
CO6: Develop and present a solution-oriented entrepreneurial project.

This course provides experiential and student-centered learning through structured co-curricular and community-oriented activities. It promotes civic responsibility, teamwork, communication, leadership, safety awareness, and responsible behaviour, with particular emphasis on traffic awareness and road safety.
Course Outcome:
CO1: Develop awareness of traffic rules and road safety practices.
CO2: Demonstrate safe and responsible behaviour as a road user.
CO3: Develop civic responsibility through participation in community-oriented activities.
CO4: Demonstrate teamwork, communication, and leadership skills through student-centered activities.
CO5: Promote traffic awareness and road safety practices among peers and the community.
CO6: Demonstrate responsible behaviour and active participation in safety and awareness activities.

2ND SEMESTER SUBJECTS

This course develops advanced language and professional communication competencies through functional grammar, vocabulary enrichment, reading comprehension, and structured writing. It emphasizes effective business and official correspondence, report writing, notices, agendas, minutes, and professional documentation, enabling students to communicate clearly and appropriately in academic and workplace contexts.
Course Outcome:
CO1: Apply vocabulary and grammar skills effectively in written and spoken communication
CO2: Apply competence for better application of grammar in different contexts
CO3: Demonstrate comprehension and critical analysis of various reading materials
CO4: Develop effective writing skills for professional and academic contexts
CO5: Illustrate the different aspects of communication using the four macro skills: reading, writing, speaking, and listening skills, according to the professional bent
CO6: Construct effective grammatically correct paragraphs

This practical course develops effective oral, listening, and interpersonal communication through group discussions, speeches, seminars, debates, telephonic conversations, and paper presentations. It emphasizes pronunciation, voice modulation, communication etiquette, listening comprehension, confidence, and integrated application of professional communication skills.
Course Outcome:
CO1: Understand and apply the principles of reflection, refraction, and image formation to analyze optical systems and solve problems involving lenses and mirrors.
CO2: Apply Coulomb’s law to calculate electric fields, potentials, and forces in various electrostatic configurations.
CO3: Analyze and solve problems related to resistive circuits using Ohm’s law, Kirchhoff’s laws, and the concepts of power, energy, and circuit elements in steady-state conditions.
CO4: Apply Maxwell’s equations and the concepts of electric and magnetic fields to analyze electromagnetic wave propagation and solve problems related to electromagnetic forces and induction.
CO5:Make use of laser for engineering applications.
C06:Understand the behavior of charge carriers in semiconductors and apply semiconductor theory to analyze and design basic electronic devices such as diodes and transistors.

This course develops mathematical competencies required for engineering applications through differential calculus, applications of differentiation, integral calculus, differential equations, numerical integration, and operations research. It emphasizes analytical reasoning, mathematical problem-solving, optimization, and the application of mathematical techniques to engineering and real-world problems.
Course Outcome:
CO1: Apply differential calculus to solve max/min and related rate measure problems.
CO2: Apply concepts of definite integrals to calculate the area of a curve bounded by axes.
CO3: Evaluate complex integrals in a simpler way by applying definite integral
CO4: Solve engineering problems by making use of ordinary differential equations.
CO5: Apply differential Equations and Numerical methods for higher learning of Mathematics and Engineering Applications.Optimize the utilization of resources by applying concepts of linear programming.

This course covers fundamental concepts of optics, electrostatics, electrical circuits, electromagnetism, lasers, and semiconductor physics. It develops understanding of reflection, refraction, lenses, mirrors, Coulomb’s law, electric fields, circuit laws, Maxwell’s equations, electromagnetic waves, induction, laser applications, and semiconductor devices such as diodes and transistors.
Course Outcome:
CO1: Apply principles of mechanics and geometrical optics to determine physical quantities through laboratory experiments.
CO2:Analyze the performance of optical instruments and laser systems by conducting experimental measurements.
CO3: Verify fundamental electrical laws and interpret electrical characteristics using graphical analysis.
CO4: Evaluate unknown resistances using bridge networks and galvanometer-based measurement techniques.
CO5: Operate electronic measuring instruments such as CROs to observe and analyze AC/DC signals.
CO6: Investigate semiconductor devices and diffraction phenomena to determine their characteristic parameters.

This course provides practical laboratory experience in mechanics, geometrical optics, electricity, electronics, lasers, and semiconductor physics. Students perform experiments to determine physical quantities, analyze optical and laser systems, verify electrical laws, measure unknown resistances, operate CROs, study AC/DC signals, and investigate semiconductor devices and diffraction phenomena.
Course Outcome:
CO1: Apply principles of mechanics and geometrical optics to determine physical quantities through laboratory experiments.
CO2:Analyze the performance of optical instruments and laser systems by conducting experimental measurements.
CO3: Verify fundamental electrical laws and interpret electrical characteristics using graphical analysis.
CO4: Evaluate unknown resistances using bridge networks and galvanometer-based measurement techniques.
CO5: Operate electronic measuring instruments such as CROs to observe and analyze AC/DC signals.
CO6: Investigate semiconductor devices and diffraction phenomena to determine their characteristic parameters.

This course develops awareness and understanding of environmental systems, natural resources, biodiversity, ecosystems, pollution, climate-related issues, and environmental legislation. Through case studies and practical environmental activities, students develop the ability to recognize environmental challenges, understand human–environment interdependence, and contribute to sustainable environmental management.
Course Outcome:
CO1: Analyse the impact of Biodiversity conservation on species and the environment.
CO2: Apply knowledge of environmental policies and legislations to evaluate and propose solutions for local and global environmental issues.
CO3: Implement environmental management plans to address campus environmental issues such as Waste disposal, water management, and sanitation. CO4: Students will gain knowledge of the structure and function of ecosystems, biodiversity, and the importance of natural resources.
CO5: Recognize the interdependence between humans and the environment.

This course covers the fundamental principles of mechanics and their applications in engineering. It includes force systems, equilibrium, friction, centroid, moment of inertia, kinematics, dynamics and basic analysis of mechanical systems.
Course Outcome:
CO1: Explain the fundamental concepts of engineering mechanics, force systems, vector quantities, Newton's laws, and analyze coplanar concurrent force systems using graphical and analytical methods.
CO2: Apply the principles of moments, parallel forces, couples, and equilibrium to determine reactions and solve engineering mechanics problems.
CO3: Analyze problems involving friction on horizontal and inclined planes and determine the conditions required for equilibrium.
CO4: Determine the centroid and centre of gravity of simple and composite plane figures and solid bodies using the moment method.
CO5: Evaluate the performance of simple lifting machines by determining velocity ratio, mechanical advantage, efficiency, and frictional losses for various machine systems.

This laboratory provides practical understanding of basic mechanics principles through experiments. Students perform experiments related to forces, friction, equilibrium, centre of gravity, moments and mechanical properties.
Course Outcome:
CO1: Perform and verify the laws of forces, equilibrium, and reactions using standard engineering mechanics laboratory apparatus.
CO2: Determine the mechanical advantage, velocity ratio, and efficiency of simple lifting machines through laboratory experiments.
CO3: Determine the centre of gravity of regular and irregular lamina and evaluate the coefficient of friction between different surfaces.
CO4: Analyze experimental results, compare them with theoretical values, and interpret deviations using engineering principles.
CO5: Demonstrate proficiency in conducting engineering mechanics experiments, maintaining laboratory records, and following safe laboratory practices.

This course develops skills in advanced engineering, drawing and graphical communication. It covers orthographic projections, sectional views, development of surfaces, isometric projections, machine elements and basic assembly drawings.
Course Outcome:
CO1: Prepare detail drawings and conventional representations of wooden joints and screw threads according to engineering drawing standards.
CO2: Draw and assemble various fasteners, nuts, bolts, studs, locking devices and foundation bolts used in engineering applications.
CO3: Prepare drawings and assemblies of keys, cotters and riveted joints used in machine construction.
CO4: Develop assembly drawings of different types of couplings and related machine elements.
CO5: Create and modify engineering drawings of machine components and assemblies using CAD software.

This advanced practical course develops competencies in welding, fitting, sheet-metal fabrication, electrical maintenance, carpentry, smithy operations, and additive manufacturing. Students work with workshop tools, machines, safety practices, fabrication and maintenance techniques, CAD modelling, and 3D printing processes to develop precision, problem-solving, workmanship, and practical engineering skills.
Course Outcome:
CO1: Apply advanced welding, brazing and soldering techniques using appropriate tools, equipment and safety practices.
CO2: Perform fitting, threading and sheet metal fabrication operations to manufacture engineering components as per specifications.
CO3: Carry out electrical maintenance, testing and carpentry operations using standard workshop practices and tools.
CO4: Perform forging and heat-treatment operations using smithy tools and equipment.
CO5: Develop CAD models and demonstrate additive manufacturing processes for fabrication of engineering components.

This course develops entrepreneurial capabilities through opportunity discovery, design thinking, idea validation, business model development, market assessment, startup finance, digital entrepreneurship, and venture planning. Students learn to identify customer needs, evaluate business opportunities, develop value propositions and business models.
Course Outcome:
CO1: Identify entrepreneurial opportunities through observation, problem recognition, and customer need analysis.
CO2: Apply design thinking tools and validation techniques to develop innovative solutions.
CO3: Develop business models and assess market feasibility for entrepreneurial ventures.
CO4: Perform basic startup financial planning and identify suitable support systems and funding sources.
CO5: Utilize digital tools, business platforms, and startup ecosystem resources for venture development.
CO6: Prepare and present a viable venture proposal using entrepreneurial planning and pitching techniques.

This course provides experiential and student-centered learning through structured co-curricular, community-oriented, and awareness-based activities. It promotes active participation, teamwork, communication, leadership, civic responsibility, safety consciousness, and responsible citizenship, with particular emphasis on traffic awareness and road safety.
Course Outcome:
CO1: Develop awareness of traffic rules and road safety practices.
CO2: Demonstrate responsible and safe behaviour as a road user.
CO3: Develop civic responsibility through participation in community-oriented activities.
CO4: Demonstrate teamwork, communication, and leadership skills through student-centred activities.
CO5: Promote awareness of traffic safety and responsible road-use practices among peers and the community.

3RD SEMESTER SUBJECTS

This course introduces the properties, classification and applications of engineering materials. It covers ferrous and non-ferrous metals, alloys, polymers, ceramics, composites, heat treatment and material selection for engineering applications.
Course Outcome:
CO1: Distinguish between metals and nonmetals and ferrous and nonferrous materials
CO2: Analyze microstructure and changes in microstructure due to heat treatment
CO3: Carryout various heat treatment processes such as annealing, normalizing, tempering and hardening
CO4: Draw and interpret iron-carbon diagram & Classify various types of plastics and rubber
CO5: Explain properties and applications of composites, ceramics and smart materials

This laboratory provides practical knowledge of testing and identification of engineering materials. Students perform experiments related to hardness, tensile strength, impact strength, microstructure and heat treatment of materials.
Course Outcome:
CO1: Classify various metals and nonmetals and ferrous and nonferrous materials.
CO2: Identify and indicate the various properties of metals and alloys.
CO3: Carryout various heat treatment processes such as annealing, normalizing, tempering and hardening.
CO4: Evaluate the difference in hardness due to tempering.
CO5: Analyse microstructure and changes in microstructure due to heat treatment.

This course introduces the basic concepts of electrical and electronic engineering relevant to mechanical systems. It covers DC and AC circuits, electrical machines, transformers, measuring instruments, semiconductor devices and basic electronic circuits.
Course Outcome:
CO1: Measure basic electrical quantities and power factor in a given circuit.
CO2: Explain the construction, working principle, performance and applications of transformers.
CO3: Identify different wires of distribution system.
CO4: Select and operate single phase and three phase motors
CO5: Describe the characteristics and applications of diodes, transistors and thyristor.

This laboratory provides practical experience in basic electrical and electronic circuits. Students perform experiments on electrical measurements, DC and AC circuits, transformers, motors and basic electronic devices.
Course Outcome:
CO1: Identify and operate single phase and three phase motors.
CO2: Identify different wires of distribution system.
CO3: Classify different types of fuses, MCBs and ELCBs.
CO4: Use of ammeter, voltmeter, wattmeter, and multi-meter.
CO5: Describe the characteristics and applications of diodes, transistors and thyristor.

This course introduces the principles of engineering measurement and instrumentation. It covers measurement standards, errors, limits and fits, linear and angular measurements, gauges, comparators and basic measuring instruments.
Course Outcome:
CO1: Use vernier caliper, micrometer, Height gauge for linear internal and external measurement.
CO2: Use bore gauge, radius gauge, taper gauge, plug gauge, ring gauge, snap gauge for measurements.
CO3: Use bevel protector, sine bar, slip gauge, dial indictor, angle deckor, poppy dial for angular measurements.
CO4: Measure spur gear characteristics using gear tooth vernier, outside diameter over dovel pins.
CO5: Select and measure variables using electrical and electronics comparators and measuring instrument, sensors, transducers and Use profile projector, auto collimeter, angle deckor, nondestructive testing methods.

This laboratory provides hands-on experience in precision measurement and inspection. Students perform measurements using vernier calipers, micrometers, gauges, dial indicators, comparators and other metrological instruments.
Course Outcome:
CO1: Use vernier calliper, micrometer, Height gauge for linear internal and external measurement
CO2: Use bevel protector, sine bar, slip gauge, dial indictor, angle deckor, poppy dial for angular measurements.
CO3: Measure spur gear characteristics using gear tooth vernier, outside diameter over dovel pins.
CO4: Use tool makers microscope
CO5: Use profile projector, auto collimeter, angle deckor.

This course develops fundamental skills in mechanical engineering, drawing and graphical communication. It covers orthographic projection, sectional views, dimensioning, machine elements and representation of mechanical components.
Course Outcome:
CO1: Interpret different limits and fits of components.
CO2: Draw intersection of cylinders and their profile.
CO3: Draw different kind of machine components like bearings, brackets, pulleys, pipe joints and lathe tool holder.
CO4: Draw electrical circuit diagram of simple household electrical circuits and home appliances
CO5: Read and interpret drawings of mechanical components

This course introduces basic manufacturing processes and workshop practices used in mechanical engineering. It covers casting, forging, welding, sheet metal work, fitting and basic machining operations.
Course Outcome:
CO1: Interpret different limits and fits of components.
CO2: Draw intersection of cylinders and their profile.
CO3: Draw different kind of machine components like bearings, brackets, pulleys, pipe joints and lathe tool holder.
CO4: Draw electrical circuit diagram of simple household electrical circuits and home appliances
CO5: Read and interpret drawings of mechanical components

This laboratory provides practical training in basic workshop processes. Students perform fitting, welding, sheet metal, casting, forging and machining-related activities using appropriate tools and equipment.
Course Outcome:
CO1: Interpret different limits and fits of components.
CO2: Draw intersection of cylinders and their profile.
CO3: Draw different kind of machine components like bearings, brackets, pulleys, pipe joints and lathe tool holder.
CO4: Draw electrical circuit diagram of simple household electrical circuits and home appliances
CO5: Read and interpret drawings of mechanical components

This course provides students with an opportunity to study an interdisciplinary or emerging area beyond the core mechanical engineering curriculum. It develops additional knowledge and skills according to the selected elective.
Course Outcome:
For specific Elective Subject

This activity-based course promotes social responsibility, environmental awareness, energy conservation and healthy community practices through student participation in awareness campaigns and related activities.
Course Outcome:
CO1: Develop awareness of traffic rules and road safety practices.
CO2: Demonstrate safe and responsible behaviour as a road user.
CO3: Develop civic responsibility through participation in community-oriented activities.
CO4: Demonstrate teamwork, communication, and leadership skills through student-centered activities.
CO5: Promote traffic awareness and road safety practices among peers and the community.
CO6: Demonstrate responsible behaviour and active participation in safety and awareness activities.

4TH SEMESTER SUBJECTS

This course develops communication, interpersonal, professional and entrepreneurial skills required for career development. It covers leadership, teamwork, problem-solving, business ideas, entrepreneurship, business planning and basic financial concepts.
Course Outcome:
CO1: Explain the importance of generic skills
CO2: Manage himself/herself physically, intellectually and psychologically
CO3: Work effectively as a team member.
CO4: Identify entrepreneurial support system for new ventures and small businesses
CO5: Demonstrate how to launch an individual's entrepreneurial career.
CO6: Apply knowledge to solve problems.
CO7: Manage tasks effectively.

This course covers the principles and applications of hydraulic and pneumatic systems used in mechanical and industrial applications. It includes pumps, compressors, valves, actuators, circuits and control systems.
Course Outcome:
CO1: To understand fluid properties, their units and conversion.
CO2: To Maintain different types of pressure and pressure gauges.
CO3: To Calculate flow and discharge of various liquids.
CO4: To Calculate pipe friction and losses in pipelines.
CO5: To Specify hydraulic machines for different applications.

This laboratory provides practical experience in hydraulic and pneumatic systems. Students identify components, construct circuits and study the operation and control of hydraulic and pneumatic actuators.
Course Outcome:
CO1: Identify importance of various fluid properties at rest and in transit.
CO2: Derive and apply general governing equations for various fluid flows.
CO3: Understand the concept of boundary layer theory and flow separation.
CO4: Plot velocity and pressure profiles for any given fluid flow.
CO5: Evaluate the performance characteristics of hydraulic turbines and pumps.

This course introduces the behaviour of engineering materials under different types of loading. It covers stress, strain, bending, shear force, bending moment, torsion, deflection and basic analysis of mechanical components.
Course Outcome:
CO1: To understand the concepts of stress, strains & stress strain diagrams.
CO2: Calculation of stresses & strains under various conditions.
CO3: To understand the basics of material properties, stress and strain.
CO4: To apply knowledge of mathematics, science, for engineering applications.
CO5: Ability to identify, formulate, and solve engineering & real-life problems.

This laboratory provides practical understanding of the mechanical behaviour of materials. Students conduct tensile, hardness, impact, torsion, bending and other tests to determine material properties.
Course Outcome:
CO1: To understand basic different stresses, strains and deflection for designing a simple mechanical element.
CO2: Behaviour of machine elements under various loading conditions.
CO3: Analysis of composite beams and shafts.
CO4: Understand and apply the concept of stress and strain to analyse and design structural members and machine parts under axial load, bending moment and torsional moment.
CO5: Determine the deflections and deformations of loaded flexural members.

This course introduces the fundamental concepts and laws of thermodynamics and their engineering applications. It covers properties of pure substances, work, heat, first and second laws, entropy and thermodynamic processes.
Course Outcome:
CO1: Apply thermodynamic laws.
CO2: Solve basic problems of gas equation using perfect gas laws.
CO3: Determine enthalpy, specific heat capacity and P-V-T surface of an ideal and real gas.
CO4: Explain the working, construction and applications of steam boilers and steam generators
CO5: Interpret different modes of heat transfer.

This laboratory provides practical exposure to basic thermodynamic principles and measurements. Students perform experiments related to temperature, pressure, heat transfer, gas processes and performance of thermodynamic devices.
Course Outcome:
CO1: Interpret and draw the drawings of mechanical machine parts like jig, vices and screw jack.
CO2: Interpret and prepare the drawings of boiler parts.
CO3: Interpret and prepare the drawings of I.C. engine parts.
CO4: Interpret and draw different types of cams for different kinds of motions.
CO5: Interpret gear terminology and draw spur gear teeth profile.

This course develops advanced skills in mechanical engineering, drawing and graphical representation. It covers assembly drawings, machine components, sectional views, development of surfaces and detailed drawings of mechanical systems.
Course Outcome:
CO1: Interpret and draw the drawings of mechanical machine parts like jig, vices and screw jack.
CO2: Interpret and prepare the drawings of boiler parts.
CO3: Interpret and prepare the drawings of I.C. engine parts.
CO4: Interpret and draw different types of cams for different kinds of motions.
CO5: Interpret gear terminology and draw spur gear teeth profile.

This course covers advanced manufacturing processes and workshop technologies used in mechanical engineering. It includes machining processes, machine tools, cutting tools, metal forming, joining processes and modern manufacturing practices.
Course Outcome:
CO1: To analyze the mechanism of material removal process and their impact on surface integrity.
CO2: To understand the various tool wear phenomenon and parameters affecting tool life.
CO3: To utilize the construction feature of various machine tools and their industrial applications.
CO4: To understand the operations and capabilities of various metal machining and metal forming processes.
CO5: To recognize the various work holding techniques and their role in quality assurance. Study of coolants.

This laboratory provides practical experience with advanced workshop and manufacturing processes. Students perform machining, forming, joining and other operations using conventional machine tools and workshop equipment.
Course Outcome:
CO1: To categorize and recognize appropriate manufacturing process to accomplish given job.
CO2: To develop Inter-relationships between material properties and manufacturing processes.
CO3: To understand operations and capabilities of various metal machining and metal forming processes.
CO4: To understand various sheet metal operation.
CO5: To examine the various basic machine tool operations to accomplish desired geometry.

This activity-based course develops entrepreneurial awareness and encourages students to identify opportunities, develop innovative ideas and understand basic aspects of entrepreneurship through camps and student participation.
Course Outcome:
CO1: Explain the basic concepts and importance of entrepreneurship.
CO2: Identify potential entrepreneurial opportunities in engineering fields.
CO3: Develop innovative ideas for simple products or services.
CO4: Demonstrate communication, teamwork and leadership skills.
CO5: Participate effectively in entrepreneurial awareness and student-centred activities.

5TH SEMESTER SUBJECTS

This course introduces the principles and applications of refrigeration and air-conditioning systems. It covers refrigeration cycles, refrigerants, compressors, condensers, evaporators, expansion devices, psychrometry and basic air-conditioning systems.
Course Outcome:
CO1: Explain the working and construction features of refrigeration and air conditioning systems.
CO2: Draw and interpret various refrigeration cycles.
CO3: Make basic calculation of psychometric properties and processes.
CO4: Thermodynamically analyze refrigeration and air conditioning systems and evaluate performance parameters
CO5: Apply the principles of Psychometrics to design the air conditioning loads for the industrial applications

This laboratory provides practical knowledge of refrigeration and air-conditioning systems. Students perform experiments on refrigeration cycles, compressors, refrigerants, cooling capacity and air-conditioning processes.
Course Outcome:
CO1. Illustrate the fundamental principles and applications of refrigeration and air conditioning system
CO2. Obtain cooling capacity and coefficient of performance by conducting test on vapour compression refrigeration systems
CO3. Present the properties, applications and environmental issues of different refrigerants
CO4. Calculate cooling load for air conditioning systems used for various
CO5. Operate and analyze the refrigeration and air conditioning systems

This course introduces CNC technology and its applications in modern manufacturing. It covers CNC machine components, coordinate systems, programming, tooling, machining operations and basic computer-controlled manufacturing processes.
Course Outcome:
CO1: Explain the principles and components of CNC machines.
CO2: Analyze CNC machine operations, coordinate systems and tooling.
CO3: Develop basic CNC part programs for machining operations.
CO4: Select suitable cutting tools and machining parameters for CNC operations.
CO5: Evaluate CNC manufacturing processes based on accuracy, productivity and quality.

This laboratory provides practical training in CNC machining and programming. Students develop and execute basic CNC programs and perform machining operations using CNC equipment and workshop tools.
Course Outcome:
CO1: Identify and operate basic CNC machine controls and components.
CO2: Develop and simulate basic CNC part programs.
CO3: Execute CNC machining operations using suitable tools and parameters.
CO4: Measure and inspect CNC-machined components.
CO5: Apply safe and efficient CNC machining practices.

This course extends thermodynamic concepts to practical engineering systems. It covers thermodynamic cycles, steam power cycles, gas power cycles, refrigeration cycles, compressors and performance analysis of thermal systems.
Course Outcome:
CO1. Explain the working and construction features of refrigeration and air conditioning systems.
CO2. Draw and interpret various refrigeration cycles.
CO3. Explain latest developments in the field of refrigeration and air conditioning.
CO4. Thermodynamically analyze refrigeration and air conditioning systems and evaluate performance parameters
CO5. Apply the principles of Psychometrics to design the air conditioning loads for the industrial applications

This laboratory provides practical understanding of thermodynamic cycles and systems. Students perform experiments on engines, compressors, refrigeration systems and other thermal equipment to determine their performance.
Course Outcome:
CO1. Understand the various types of I.C Engines and Cycles of operation.
CO2. To demonstrate knowledge of the operating characteristics of common IC engines.
CO3. Analyze the effect of various operating variables on engine performance.
CO4. Understand normal and abnormal combustion phenomena in SI and CI engines.
CO5. Identify fuel metering and fuel supply systems for different types of engines.

This course introduces the principles of mechanisms and machines used for transmitting and controlling motion. It covers kinematics of mechanisms, velocity and acceleration analysis, gears, flywheels, governors, brakes and balancing.
Course Outcome:
CO1. Explain working of different types of mechanisms and draw their inversion.
CO2. Determine ratio of driving tension for flat and V-belt drive. Identify various types of gears and their applications.
CO3. Construct turning moment diagram of flywheel for different types of engine.
CO4. Explain working of different types of governors.
CO5. Calculate balancing of rotating mass and its position.

This course covers the construction, operation and major systems of automobiles. It includes engines, transmission, steering, suspension, braking, electrical systems, vehicle safety and emission control technologies.
Course Outcome:
CO1. Identify and explain the function of different chassis components and drive types. and maintain transmission system
CO2. Classify and explain the various types of Steering system and brakes
CO3. Gain the knowledge about suspension system, Dynamo and Alternator.
CO4. Impart the knowledge about testing and charging of Lead-acid battery.
CO5. Interpret Bharat norms of exhaust emissions.

This laboratory provides practical exposure to automobile components and systems. Students study engine, transmission, steering, suspension, braking and electrical systems and perform basic inspection and maintenance activities.
Course Outcome:
CO1: Inspect and identify fault in battery and pumps.
CO2: Carry out balancing of wheels to maintain steering geometry.
CO3: Carry out routine servicing of brake system and bleeding of hydraulic brakes.
CO4: Carry out testing and charging of Lead-acid battery.
CO5: Will be able to do servicing of a 2 wheeler and 4 wheeler.

This course introduces computer-aided drafting techniques for preparing engineering drawings. It covers CAD tools, 2D drafting, dimensioning, geometric construction, sectional views and basic 3D modelling of mechanical components.
Course Outcome:
CO1: Use AutoCAD for 2D drafting, including creation, editing, dimensioning, and annotations.
CO2: Prepare detailed and assembly mechanical drawings using CAD tools.
CO3: Create isometric and orthographic projections of mechanical components using CAD software.
CO4: Develop part models in 3D using SolidWorks with various modeling features.
CO5: Create assemblies using SolidWorks, apply constraints (mates), and perform interference detection.

This course introduces the fundamental principles of management and their application in organizations. It covers planning, organizing, staffing, directing, coordination, leadership, motivation and controlling.
Course Outcome:
CO1: Understand and explain the fundamental concepts, principles, and functions of management
CO2: Apply planning and decision-making techniques to managerial scenarios .
CO3:Analyze organizational structures and processes to enhance efficiency.
CO4: Evaluate various leadership and motivational theories and their application in management
CO5: Create and implement effective management strategies to address contemporary issues and challenges.

This course provides students with practical industrial exposure and an opportunity to relate classroom knowledge to real manufacturing and engineering practices. Students observe industrial processes, equipment, safety practices, quality systems and workplace operations.
Course Outcome:
CO1: Identify industrial processes, equipment and workplace practices.
CO2: Relate theoretical knowledge to practical industrial applications.
CO3: Observe and analyze manufacturing, maintenance and quality practices.
CO4: Demonstrate professional, safety and teamwork skills in an industrial environment.
CO5: Prepare and present a structured industrial training report based on practical learning.

This activity-based course focuses on developing students' communication, confidence, teamwork, leadership and professional behaviour through personality development camps and student-centred activities.
Course Outcome:
CO1 Demonstrate effective verbal and written communication skills.
CO2 Apply teamwork and leadership skills in group activities.
CO3 Develop confidence and professional behaviour for workplace situations.
CO4 Apply problem-solving and interpersonal skills in practical situations.
CO5 Demonstrate improved personality, discipline and professional attitude.

This course introduces industrial automation and robotics used in modern manufacturing. It covers automation components, sensors, actuators, PLCs, robotic systems, programming and applications in automated production.
Course Outcome:
CO1 Explain the principles and components of industrial automation and robotics.
CO2 Analyze the role of sensors, actuators and controllers in automation.
CO3 Explain basic PLC and robot programming concepts.
CO4 Apply automation and robotic technologies to manufacturing applications.
CO5 Evaluate suitable automation solutions for basic industrial processes.

This course covers the principles, types and applications of material handling equipment used in industries. It includes conveyors, cranes, hoists, elevators, industrial trucks and automated material handling systems.
Course Outcome:
CO1 Explain the principles and classification of material handling equipment.
CO2 Analyze the construction and working of common material handling systems.
CO3 Select suitable material handling equipment for industrial applications.
CO4 Evaluate material handling systems based on capacity, efficiency and safety.
CO5 Apply appropriate material handling practices for efficient movement of materials.

This course introduces the principles and practices of installing, inspecting and maintaining mechanical equipment. It covers preventive and corrective maintenance, lubrication, alignment, fault diagnosis, safety and maintenance planning.
Course Outcome:
CO1 Explain the principles and types of industrial equipment maintenance.
CO2 Identify common faults and maintenance requirements of mechanical equipment.
CO3 Apply preventive and corrective maintenance techniques.
CO4 Analyze equipment failures using basic troubleshooting methods.
CO5 Develop basic maintenance practices considering safety, reliability and efficiency.

This course introduces the principles and components of conventional and renewable power plants. It covers steam, hydro, gas turbine, diesel and nuclear power plants along with plant layout, performance, safety and environmental considerations.
Course Outcome:
CO1 Explain the working principles and major components of power plants.
CO2 Analyze the operation of steam, hydro, gas turbine and diesel power plants.
CO3 Evaluate the performance of power generation systems.
CO4 Compare different power generation technologies based on efficiency and applications.
CO5 Explain environmental, safety and sustainability aspects of power generation.

This course introduces the basic principles and procedures used in designing mechanical components. It covers design considerations, stresses, shafts, keys, couplings, fasteners, springs, bearings and selection of suitable materials.
Course Outcome:
CO1: Understand basic design concepts, material properties, and design procedures.
CO2: Design shafts considering different loads and failure criteria.
CO3: Design keys including their dimensions and failure modes.
CO4: Design temporary (knuckle, cotter) and permanent (welded, riveted) joints.
CO5: Design flange couplings and screwed joints used in power transmission.

6TH SEMESTER SUBJECTS

A compulsory industry internship providing extended workplace exposure and an opportunity to apply technical, analytical, communication, teamwork, and professional skills in real-world settings.
Course Outcome:
CO1: Apply technical knowledge and skills to real-world industrial problems and work environments.
CO2: Demonstrate professional skills through participation in industry-based tasks and activities.
CO3: Apply analytical and problem-solving skills to assigned workplace responsibilities.
CO4: Demonstrate effective communication and teamwork in a professional environment.
CO5: Develop professional discipline, work ethics, time management, and responsible workplace behaviour.
CO6: Prepare and present internship work effectively through proper documentation, reporting, and presentation.

fees

Details

Amount

Programme Fees (per Semester)

40000

Examination Fees

3000

International Fees (per Year)

Not Applicable

Fee Slab

Slab >=60% - 74.99% >=75% - 89.99% >=90% & Above
Fee ₹35000 ₹30000 ₹25000

Students can avail these slots depending on the marks they have scored. Each slot reflects a different academic range, helping students understand where they stand and what benefits they qualify for.

Programme Outcomes

  • Apply mechanical engineering fundamentals.
  • Use CAD/CAM and workshop tools.
  • Maintain and troubleshoot mechanical systems.

Programme Specific Outcomes

  • Prepare engineering drawings.
  • Operate manufacturing and testing equipment.

Salient Features

  • Modern labs, hands on training, industry exposure, skill development, and project based learning.

Infrastructure