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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Mechanical Engineering

    Mahayogi Gorakhnath University, Gorakhpur
    Duration
    4 Years
    Mechanical Engineering UG OFFLINE

    Duration

    4 Years

    Mechanical Engineering

    Mahayogi Gorakhnath University, Gorakhpur
    Duration
    Apply

    Fees

    ₹1,20,000

    Placement

    94.0%

    Avg Package

    ₹6,50,000

    Highest Package

    ₹15,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Mechanical Engineering
    UG
    OFFLINE

    Fees

    ₹1,20,000

    Placement

    94.0%

    Avg Package

    ₹6,50,000

    Highest Package

    ₹15,00,000

    Seats

    350

    Students

    350

    ApplyCollege

    Seats

    350

    Students

    350

    Curriculum

    Comprehensive Course Structure Across 8 Semesters

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Pre-requisites
    IME101Engineering Mathematics I3-1-0-4-
    IME102Engineering Physics3-1-0-4-
    IME103Engineering Chemistry3-1-0-4-
    IME104Basic Electrical Engineering3-1-0-4-
    IME105Engineering Graphics2-1-0-3-
    IME106Workshop Practice0-0-2-1-
    IME107Introduction to Mechanical Engineering2-0-0-2-
    IIME201Engineering Mathematics II3-1-0-4ME101
    IIME202Engineering Mechanics3-1-0-4-
    IIME203Materials Science3-1-0-4-
    IIME204Thermodynamics3-1-0-4-
    IIME205Mechanics of Solids3-1-0-4-
    IIME206Fluid Mechanics3-1-0-4-
    IIIME301Machine Design I3-1-0-4ME205, ME206
    IIIME302Manufacturing Technology3-1-0-4-
    IIIME303Strength of Materials3-1-0-4ME205
    IIIME304Heat Transfer3-1-0-4ME204
    IIIME305Engineering Economics3-1-0-4-
    IVME401Machine Design II3-1-0-4ME301
    IVME402Industrial Engineering3-1-0-4-
    IVME403Automobile Engineering3-1-0-4-
    IVME404Refrigeration & Air Conditioning3-1-0-4-
    VME501Advanced Thermodynamics3-1-0-4ME204
    VME502Finite Element Analysis3-1-0-4-
    VME503Control Systems3-1-0-4-
    VME504Manufacturing Processes3-1-0-4-
    VME505Engineering Optimization3-1-0-4-
    VIME601Renewable Energy Systems3-1-0-4-
    VIME602Robotics & Automation3-1-0-4-
    VIME603Smart Materials & Structures3-1-0-4-
    VIME604Sustainable Manufacturing3-1-0-4-
    VIIME701Capstone Project0-0-6-12All prior semesters
    VIIIME801Final Year Thesis0-0-6-12All prior semesters

    Detailed Overview of Advanced Departmental Electives

    Advanced departmental electives in Mechanical Engineering at Mahayogi Gorakhnath University are designed to provide students with specialized knowledge and skills that align with current industry trends and future technological developments. Each course is taught by experts from within the department or external professionals who bring real-world experience to the classroom.

    Advanced Thermodynamics

    This elective delves deeper into thermodynamic processes, focusing on non-equilibrium systems, entropy production, and advanced cycle analysis. Students learn to model complex thermodynamic phenomena using computational tools like MATLAB and Python. The course emphasizes practical applications in power plants, refrigeration systems, and energy storage technologies.

    Finite Element Analysis

    The course introduces students to numerical methods for solving engineering problems through finite element modeling. Using software packages such as ANSYS and ABAQUS, students perform stress analysis, heat transfer simulations, and dynamic response evaluations of mechanical components.

    Control Systems

    This elective explores modern control theory, including state-space representation, frequency domain analysis, and digital control systems. Students gain hands-on experience with MATLAB/Simulink to design controllers for robotic arms, aircraft autopilots, and industrial automation systems.

    Manufacturing Processes

    The course covers advanced manufacturing techniques such as additive manufacturing (3D printing), laser cutting, electron beam welding, and precision machining. Students engage in lab-based projects that simulate real-world production environments.

    Engineering Optimization

    This elective teaches optimization algorithms used in engineering design, including linear programming, genetic algorithms, and multi-objective optimization methods. Real-world case studies from automotive and aerospace industries illustrate the application of these techniques.

    Renewable Energy Systems

    Focusing on solar, wind, hydroelectric, and biomass systems, this course combines theoretical understanding with practical implementation. Students design and test renewable energy prototypes, gaining insight into grid integration and policy frameworks governing clean energy adoption.

    Robotics & Automation

    This elective covers robotics kinematics, sensor integration, and control algorithms. Through lab sessions and project work, students build autonomous robots capable of navigating environments, performing tasks, and interacting with humans safely.

    Smart Materials & Structures

    Students explore adaptive materials such as shape memory alloys, piezoelectric ceramics, and magnetorheological fluids. The course includes hands-on experiments involving smart structures that respond to environmental stimuli, with applications in aerospace, biomedical devices, and civil infrastructure.

    Sustainable Manufacturing

    This course focuses on eco-friendly manufacturing practices, including lean production, waste minimization, and lifecycle assessment. Students learn how to design manufacturing systems that reduce environmental impact without compromising performance or profitability.

    Computational Fluid Dynamics

    Using computational tools like Fluent and OpenFOAM, students simulate fluid flow behavior in various engineering applications. Projects include optimizing aircraft wing designs, analyzing heat exchanger performance, and modeling pollutant dispersion in urban environments.

    Project-Based Learning Philosophy

    The department's philosophy on project-based learning is centered around experiential education that bridges the gap between theory and practice. From the early stages of undergraduate studies, students are encouraged to engage in small-scale projects that reinforce classroom learning. These mini-projects serve as stepping stones toward larger, more complex final-year capstone projects.

    Mini-projects are typically completed in groups of 3-4 students over a period of 2-3 months and must involve design, analysis, and testing phases. Evaluation criteria include technical execution, innovation, presentation quality, and peer feedback. Students receive mentorship from faculty members who guide them through the process of conceptualizing ideas, conducting feasibility studies, selecting appropriate materials, and building prototypes.

    The final-year capstone project represents the culmination of the student's academic journey. Projects are selected based on student interest, available resources, and industry relevance. Faculty mentors are assigned based on expertise in related fields, ensuring that students receive high-quality supervision throughout their project lifecycle. The project must demonstrate originality, practical applicability, and adherence to engineering standards. At the end of the program, students present their projects at the annual Innovation Showcase, which attracts top recruiters from leading organizations.