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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Mechanical Engineering

    Pragjyotishpur University Kamrup
    Duration
    4 Years
    Mechanical Engineering UG OFFLINE

    Duration

    4 Years

    Mechanical Engineering

    Pragjyotishpur University Kamrup
    Duration
    Apply

    Fees

    ₹3,50,000

    Placement

    93.0%

    Avg Package

    ₹5,50,000

    Highest Package

    ₹9,50,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Mechanical Engineering
    UG
    OFFLINE

    Fees

    ₹3,50,000

    Placement

    93.0%

    Avg Package

    ₹5,50,000

    Highest Package

    ₹9,50,000

    Seats

    120

    Students

    1,200

    ApplyCollege

    Seats

    120

    Students

    1,200

    Curriculum

    Comprehensive Course Structure

    The Mechanical Engineering program at Pragjyotishpur University Kamrup is designed to provide students with a comprehensive and progressive learning experience across eight semesters. The curriculum integrates foundational sciences, core engineering principles, and specialized electives to ensure that graduates are well-prepared for diverse career paths in the field of mechanical engineering.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1MAT101Calculus and Differential Equations3-1-0-4-
    1PHY101Physics for Engineers3-1-0-4-
    1CHE101Chemistry for Engineers3-1-0-4-
    1ENG101Engineering Mechanics3-1-0-4-
    1CSE101Introduction to Programming2-0-2-3-
    1ME101Engineering Drawing and Design2-0-2-3-
    1LIT101English for Engineers2-0-0-2-
    1PHY102Physics Laboratory0-0-3-1PHY101
    1CHE102Chemistry Laboratory0-0-3-1CHE101
    2MAT201Linear Algebra and Statistics3-1-0-4MAT101
    2PHY201Thermodynamics and Heat Transfer3-1-0-4PHY101
    2CHE201Materials Science3-1-0-4CHE101
    2ENG201Mechanics of Materials3-1-0-4ENG101
    2CSE201Data Structures and Algorithms2-0-2-3CSE101
    2ME201Manufacturing Processes3-1-0-4ENG101
    2LIT201Communication Skills2-0-0-2-
    2MAT202Statistics Laboratory0-0-3-1MAT201
    2PHY202Thermodynamics Laboratory0-0-3-1PHY201
    3MAT301Differential Equations and Numerical Methods3-1-0-4MAT201
    3ME301Fluid Mechanics3-1-0-4ENG201
    3ME302Mechanical Design and Drafting3-1-0-4ENG201
    3ME303Machine Elements3-1-0-4ENG201
    3ME304Heat Transfer3-1-0-4PHY201
    3CSE301Computer Aided Design2-0-2-3CSE201
    3ME305Control Systems3-1-0-4MAT301
    3ME306Manufacturing Engineering3-1-0-4ME201
    3LIT301Technical Writing2-0-0-2-
    3ME307Fluid Mechanics Laboratory0-0-3-1ME301
    3ME308Heat Transfer Laboratory0-0-3-1ME304
    4MAT401Advanced Mathematics3-1-0-4MAT301
    4ME401Advanced Manufacturing3-1-0-4ME306
    4ME402Aerodynamics3-1-0-4ME301
    4ME403Thermofluids3-1-0-4ME304
    4ME404Project Management3-1-0-4-
    4CSE401Simulation and Modeling2-0-2-3CSE301
    4ME405Renewable Energy Systems3-1-0-4ME304
    4ME406Advanced Control Systems3-1-0-4ME305
    4LIT401Presentation Skills2-0-0-2-
    4ME407Advanced Manufacturing Laboratory0-0-3-1ME401
    5ME501Finite Element Analysis3-1-0-4ME303
    5ME502Robotics and Automation3-1-0-4ME305
    5ME503Advanced Materials3-1-0-4CHE201
    5ME504Computational Fluid Dynamics3-1-0-4ME301
    5ME505Energy Storage Systems3-1-0-4ME304
    5ME506Quality Control and Reliability3-1-0-4-
    5CSE501Machine Learning for Engineers2-0-2-3CSE401
    5LIT501Leadership and Ethics2-0-0-2-
    5ME507Materials Testing Laboratory0-0-3-1ME503
    5ME508CFD Laboratory0-0-3-1ME504
    6ME601Advanced Thermodynamics3-1-0-4ME304
    6ME602Design Optimization3-1-0-4ME302
    6ME603Advanced Manufacturing Processes3-1-0-4ME401
    6ME604Systems Engineering3-1-0-4-
    6ME605Energy Conversion Systems3-1-0-4ME304
    6ME606Product Design and Development3-1-0-4ME302
    6CSE601Data Science for Engineers2-0-2-3CSE501
    6LIT601Entrepreneurship2-0-0-2-
    6ME607Product Design Laboratory0-0-3-1ME606
    6ME608Advanced Manufacturing Project0-0-3-1ME603
    7ME701Capstone Project I4-0-0-4-
    7ME702Research Methodology3-1-0-4-
    7ME703Specialized Electives3-1-0-4-
    7ME704Professional Ethics and Standards2-0-0-2-
    7ME705Industry Internship0-0-6-3-
    7LIT701Professional Communication2-0-0-2-
    8ME801Capstone Project II4-0-0-4ME701
    8ME802Advanced Specialized Topics3-1-0-4-
    8ME803Final Thesis4-0-0-4ME702
    8ME804Industry Project0-0-6-3-
    8LIT801Leadership Development2-0-0-2-

    Detailed Course Descriptions

    The department at Pragjyotishpur University Kamrup places a strong emphasis on project-based learning as a core pedagogical approach. This methodology is designed to bridge the gap between theoretical knowledge and practical application, ensuring that students can effectively translate academic concepts into real-world solutions.

    Mini-projects are integrated throughout the program's curriculum, beginning in the second year and culminating in the final-year capstone project. These projects are structured to develop technical skills, enhance problem-solving abilities, and foster teamwork among students. The evaluation criteria for these projects include design innovation, technical execution, presentation quality, and peer collaboration.

    Each mini-project is assigned a specific theme or challenge that aligns with current industry trends and engineering requirements. Students are encouraged to select projects that interest them while ensuring they meet the program's learning objectives. Faculty mentors guide students through the project lifecycle, from initial concept development to final implementation.

    The final-year thesis/capstone project represents the culmination of the student's academic journey. It provides an opportunity for students to conduct in-depth research, apply advanced engineering principles, and demonstrate their ability to work independently on complex problems. The project is typically conducted in collaboration with industry partners or research institutions, providing students with real-world exposure and networking opportunities.

    Advanced Departmental Elective Courses

    Advanced departmental electives are designed to provide students with specialized knowledge and skills that complement their core curriculum. These courses offer in-depth exploration of specific areas within mechanical engineering, preparing students for advanced roles in industry or further academic pursuits.

    1. Advanced Thermodynamics

    This course delves into the theoretical foundations of thermodynamics, including thermodynamic properties, energy transformations, and entropy analysis. Students explore advanced topics such as non-equilibrium thermodynamics, thermodynamic cycles, and applications in renewable energy systems. The course emphasizes mathematical rigor and practical applications, preparing students for research and development roles in energy sectors.

    2. Computational Fluid Dynamics

    This elective focuses on numerical methods for solving fluid flow problems, including Navier-Stokes equations, turbulence modeling, and boundary layer analysis. Students learn to use industry-standard software tools such as ANSYS Fluent and OpenFOAM to simulate complex fluid systems. The course includes practical applications in aerodynamics, heat transfer, and environmental engineering.

    3. Robotics and Automation

    This course covers the design and control of robotic systems, including kinematics, dynamics, sensor integration, and machine learning applications. Students explore topics such as industrial automation, autonomous vehicles, and smart manufacturing systems. The course combines theoretical concepts with hands-on laboratory work using robotics kits and simulation software.

    4. Advanced Materials Science

    This course provides a comprehensive overview of advanced materials including composites, ceramics, polymers, and nanomaterials. Students study material structure-property relationships, processing techniques, and applications in engineering systems. The course includes laboratory sessions on materials characterization and testing.

    5. Energy Storage Systems

    This elective explores various energy storage technologies including batteries, supercapacitors, and compressed air systems. Students examine the principles of energy conversion, system design, and optimization techniques. The course emphasizes sustainable solutions for renewable energy integration and grid stability.

    6. Finite Element Analysis

    This course teaches students how to apply finite element methods for structural analysis, heat transfer, and fluid flow problems. Students learn to use commercial software packages such as ANSYS and ABAQUS to model complex engineering systems. The course includes practical applications in aerospace, automotive, and civil engineering.

    7. Machine Learning for Engineers

    This elective introduces machine learning concepts and algorithms specifically tailored for engineering applications. Students learn to apply data-driven methods to solve problems in design optimization, predictive maintenance, and process control. The course includes hands-on projects using Python libraries such as scikit-learn and TensorFlow.

    8. Product Design and Development

    This course covers the entire product development lifecycle from concept generation to market launch. Students learn design principles, prototyping techniques, user experience analysis, and manufacturing considerations. The course emphasizes innovation management and sustainable design practices.

    9. Systems Engineering

    This elective explores systems thinking approaches for engineering problem-solving, including system modeling, optimization, and risk analysis. Students study complex system behavior, integration challenges, and performance evaluation techniques. The course includes case studies from various industries including automotive, aerospace, and manufacturing.

    10. Renewable Energy Technologies

    This course provides comprehensive coverage of renewable energy systems including solar, wind, hydroelectric, and geothermal technologies. Students examine system design principles, efficiency optimization, and environmental impact assessment. The course includes practical sessions on renewable energy system installation and maintenance.

    11. Advanced Manufacturing Processes

    This elective covers emerging manufacturing technologies including additive manufacturing, precision machining, and smart manufacturing systems. Students explore process optimization techniques, quality control methods, and automation strategies. The course includes laboratory sessions on modern manufacturing equipment and software tools.

    12. Control Systems Design

    This course focuses on advanced control theory and design methodologies for complex engineering systems. Students learn about state-space representation, digital control systems, and optimal control techniques. The course emphasizes practical applications in automotive, aerospace, and industrial automation sectors.

    13. Aerodynamics

    This elective provides in-depth study of aerodynamic principles and their application to aircraft design and performance analysis. Students explore boundary layer theory, compressible flow, and computational methods for aerodynamic analysis. The course includes laboratory sessions on wind tunnel testing and CFD simulations.

    14. Thermal Engineering

    This course covers advanced topics in heat transfer and thermal systems design, including conduction, convection, and radiation heat transfer. Students examine thermal management in electronic systems, HVAC applications, and energy conversion processes. The course includes practical sessions on thermal testing and system optimization.

    15. Quality Control and Reliability Engineering

    This elective focuses on statistical methods for quality control, reliability analysis, and risk assessment in engineering systems. Students learn about Six Sigma methodologies, failure analysis techniques, and preventive maintenance strategies. The course includes practical applications in manufacturing and industrial engineering.