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    Scholarships & exams

    support@collegese.com
    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Bachelor of Mechanical Engineering

    Mittal Institute of Technology
    Duration
    4 Years
    Bachelor of Mechanical Engineering UG OFFLINE

    Duration

    4 Years

    Bachelor of Mechanical Engineering

    Mittal Institute of Technology
    Duration
    Apply

    Fees

    ₹8,00,000

    Placement

    92.0%

    Avg Package

    ₹6,00,000

    Highest Package

    ₹9,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Bachelor of Mechanical Engineering
    UG
    OFFLINE

    Fees

    ₹8,00,000

    Placement

    92.0%

    Avg Package

    ₹6,00,000

    Highest Package

    ₹9,00,000

    Seats

    120

    Students

    1,200

    ApplyCollege

    Seats

    120

    Students

    1,200

    Curriculum

    Comprehensive Course Catalog

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Pre-requisites
    1ME101Engineering Mathematics I3-1-0-4-
    1ME102Physics for Engineers3-1-0-4-
    1ME103Chemistry for Engineering3-1-0-4-
    1ME104Engineering Graphics & Design2-1-0-3-
    1ME105Introduction to Programming2-1-0-3-
    1ME106Workshop Practice0-0-3-1-
    2ME201Engineering Mathematics II3-1-0-4ME101
    2ME202Basic Electrical Circuits3-1-0-4-
    2ME203Strength of Materials3-1-0-4ME102
    2ME204Fluid Mechanics3-1-0-4ME102
    2ME205Manufacturing Processes3-1-0-4-
    2ME206Lab Practice - Fluid Mechanics0-0-3-1ME204
    3ME301Mechanics of Machines3-1-0-4ME203
    3ME302Thermodynamics3-1-0-4ME202
    3ME303Heat Transfer3-1-0-4ME204
    3ME304Machine Design I3-1-0-4ME301
    3ME305Control Systems3-1-0-4ME201
    3ME306Lab Practice - Control Systems0-0-3-1ME305
    4ME401Dynamics of Machines3-1-0-4ME301
    4ME402Advanced Thermodynamics3-1-0-4ME302
    4ME403Manufacturing Technology II3-1-0-4ME205
    4ME404Machine Design II3-1-0-4ME304
    4ME405Refrigeration & Air Conditioning3-1-0-4ME302
    4ME406Lab Practice - Refrigeration0-0-3-1ME405
    5ME501Advanced Fluid Mechanics3-1-0-4ME204
    5ME502Finite Element Analysis3-1-0-4ME301
    5ME503Numerical Methods in Engineering3-1-0-4ME201
    5ME504Renewable Energy Systems3-1-0-4ME302
    5ME505Project Management3-1-0-4-
    5ME506Lab Practice - FEA0-0-3-1ME502
    6ME601Robotics & Automation3-1-0-4ME305
    6ME602Advanced Materials Science3-1-0-4ME203
    6ME603Computational Fluid Dynamics3-1-0-4ME501
    6ME604Design of Experiments3-1-0-4ME201
    6ME605Entrepreneurship & Innovation3-1-0-4-
    6ME606Lab Practice - Robotics0-0-3-1ME601
    7ME701Capstone Project I2-0-6-8-
    7ME702Advanced Control Systems3-1-0-4ME305
    7ME703Systems Engineering3-1-0-4-
    7ME704Aerospace Propulsion3-1-0-4ME302
    7ME705Sustainable Manufacturing3-1-0-4-
    7ME706Lab Practice - Systems Engineering0-0-3-1ME703
    8ME801Capstone Project II2-0-6-8-
    8ME802Internship0-0-0-4-
    8ME803Advanced Topics in Mechanical Engineering3-1-0-4-
    8ME804Research Methodology3-1-0-4-
    8ME805Technical Writing & Presentation2-0-0-2-
    8ME806Industry Interaction Sessions0-0-0-2-

    Detailed Course Descriptions for Advanced Departmental Electives

    Advanced Fluid Mechanics (ME501): This course explores complex fluid behavior, including turbulent flows, boundary layer theory, and multiphase flow phenomena. Students will study Navier-Stokes equations, computational methods for solving fluid problems, and real-world applications in aerospace and chemical engineering.

    Finite Element Analysis (ME502): The course introduces finite element modeling techniques for structural, thermal, and dynamic analysis. Topics include mesh generation, solution algorithms, post-processing tools, and application to engineering systems. Students will use industry-standard software like ANSYS and ABAQUS.

    Numerical Methods in Engineering (ME503): This course focuses on numerical solutions for engineering problems using methods such as finite difference, Runge-Kutta, and iterative solvers. Applications include heat transfer, fluid dynamics, and structural mechanics. Students will implement algorithms in Python or MATLAB.

    Renewable Energy Systems (ME504): This course examines solar, wind, hydroelectric, and geothermal energy systems. It covers design principles, efficiency optimization, integration into power grids, and environmental impact assessment. Students will analyze real-world case studies from around the world.

    Project Management (ME505): Designed to equip students with project planning, execution, and monitoring skills essential for engineering roles. The course covers agile methodologies, risk management, budgeting, resource allocation, and stakeholder communication strategies.

    Robotics & Automation (ME601): This course integrates mechanical design, electronics control, sensor integration, and artificial intelligence to build intelligent robotic systems. Students will learn programming languages like Python and ROS (Robot Operating System) while designing and building functional robots.

    Advanced Materials Science (ME602): The course covers advanced materials including composites, ceramics, polymers, and nanomaterials. It includes synthesis techniques, characterization methods, mechanical properties, and applications in aerospace, biomedical, and energy sectors.

    Computational Fluid Dynamics (ME603): This course provides a comprehensive introduction to CFD using commercial software packages like Fluent and OpenFOAM. Students will solve real-world fluid problems involving aerodynamics, heat transfer, and reacting flows.

    Design of Experiments (ME604): The focus is on experimental design principles and statistical analysis for engineering research. Topics include factorial designs, response surface methodology, hypothesis testing, and data visualization using tools like Minitab and R.

    Entrepreneurship & Innovation (ME605): This course emphasizes innovation mindset, ideation techniques, business model development, and startup creation in engineering fields. Students will pitch their ideas to investors and learn about funding sources and intellectual property rights.

    Capstone Project I (ME701): The first phase of the capstone project involves identifying a real-world problem, conducting literature review, developing a conceptual framework, and preparing a detailed proposal. Students work under faculty supervision to explore innovative solutions using multidisciplinary approaches.

    Advanced Control Systems (ME702): This course delves into modern control theory including state-space representation, optimal control, robust control, and adaptive control. Students will design controllers for complex mechanical systems using MATLAB/Simulink.

    Systems Engineering (ME703): The focus is on integrating engineering disciplines to optimize system performance. Students learn about system architecture, requirements analysis, system modeling, simulation techniques, and lifecycle management.

    Aerospace Propulsion (ME704): This course covers gas dynamics, jet engines, rocket propulsion, and turbomachinery. Students will study the thermodynamic cycles involved in various propulsion systems and perform design calculations using industry-standard software.

    Sustainable Manufacturing (ME705): The course explores sustainable practices in manufacturing including waste reduction, energy efficiency, life cycle assessment, and green supply chain management. It includes case studies of eco-friendly manufacturing processes and their implementation strategies.

    Project-Based Learning Philosophy

    The department believes that project-based learning is the most effective way to bridge theory and practice. Students engage in both individual and group projects throughout their academic journey, starting from simple lab experiments in early semesters to complex, multi-disciplinary capstone projects in final year.

    Mini-projects begin in semester 3 with a focus on applying fundamental concepts learned in core courses. These projects are typically completed over 4-6 weeks and involve problem identification, design planning, implementation, and reporting. Evaluation criteria include technical execution, innovation, teamwork, and presentation quality.

    The final-year thesis/capstone project is a comprehensive endeavor spanning two semesters. Students select a topic aligned with their interests or industry needs and work closely with a faculty advisor. The process involves literature review, experimental design, data collection, analysis, and final reporting. Successful completion leads to a public defense presentation before a panel of experts.

    Faculty mentors are selected based on expertise in the chosen domain, availability, and alignment with student goals. Students are encouraged to seek guidance from multiple advisors when needed. The department also organizes project showcases where students present their work to faculty, industry professionals, and peers, fostering a culture of excellence and innovation.