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    Scholarships & exams

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

    Duration

    4 Years

    Bachelor of Mechanical Engineering

    Iasscom Fortune Institute of Technology
    Duration
    4 Years
    Bachelor of Mechanical Engineering UG OFFLINE

    Duration

    4 Years

    Bachelor of Mechanical Engineering

    Iasscom Fortune Institute of Technology
    Duration
    Apply

    Fees

    ₹8,00,000

    Placement

    92.0%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹18,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Bachelor of Mechanical Engineering
    UG
    OFFLINE

    Fees

    ₹8,00,000

    Placement

    92.0%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹18,00,000

    Seats

    150

    Students

    1,200

    ApplyCollege

    Seats

    150

    Students

    1,200

    Curriculum

    Course Structure Overview

    The Bachelor of Mechanical Engineering program at Iasscom Fortune Institute of Technology is structured over eight semesters, providing a balanced mix of theoretical knowledge, practical skills, and real-world applications. The curriculum includes core engineering subjects, departmental electives, science electives, and hands-on laboratory sessions designed to foster innovation and critical thinking.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1MATH101Calculus I3-0-2-5None
    1PHYS101Physics for Engineers3-0-2-5None
    1CHEM101Chemistry3-0-2-5None
    1ENG101English for Engineers3-0-2-5None
    1ME101Introduction to Mechanical Engineering3-0-2-5None
    1ELEC101Basic Electrical Engineering3-0-2-5None
    2MATH201Calculus II3-0-2-5MATH101
    2PHYS201Thermodynamics3-0-2-5PHYS101
    2MATL201Materials Science3-0-2-5None
    2ME201Mechanics of Solids3-0-2-5ME101
    2PROG201Programming for Engineers3-0-2-5None
    2ME202Fluid Mechanics3-0-2-5MATH201
    3MATH301Differential Equations3-0-2-5MATH201
    3ME301Heat Transfer3-0-2-5PHYS201
    3ME302Mechanics of Machines3-0-2-5ME201
    3ME303Manufacturing Processes3-0-2-5None
    3ME304Engineering Graphics and Design3-0-2-5ENG101
    3DEPT301Control Systems3-0-2-5MATH301
    4MATH401Statistics and Probability3-0-2-5MATH201
    4ME401Refrigeration and Air Conditioning3-0-2-5ME301
    4ME402Design of Machine Elements3-0-2-5ME302
    4DEPT401Finite Element Analysis3-0-2-5MATH301
    4ME403Production Planning and Control3-0-2-5None
    4DEPT402Computer Integrated Manufacturing3-0-2-5PROG201
    5ME501Advanced Thermodynamics3-0-2-5PHYS201
    5DEPT501Robotics and Automation3-0-2-5DEPT301
    5ME502Turbomachinery3-0-2-5ME202
    5DEPT502Nanotechnology and Materials3-0-2-5MATL201
    5ME503Sustainable Energy Systems3-0-2-5ME401
    5DEPT503Computational Fluid Dynamics3-0-2-5MATH301
    6ME601Vehicle Dynamics3-0-2-5ME302
    6DEPT601Smart Manufacturing Technologies3-0-2-5DEPT402
    6ME602Industrial Engineering3-0-2-5None
    6DEPT602Advanced Control Systems3-0-2-5DEPT301
    6ME603Project Management3-0-2-5None
    7ME701Research Methodology3-0-2-5None
    7DEPT701Advanced Robotics3-0-2-5DEPT501
    7ME702Energy Storage Systems3-0-2-5ME501
    7DEPT702Biomechanics3-0-2-5MATL201
    7ME703Entrepreneurship and Innovation3-0-2-5None
    8ME801Capstone Project3-0-2-5All previous semesters
    8DEPT801Advanced Simulation Techniques3-0-2-5DEPT401
    8ME802Quality Control and Reliability Engineering3-0-2-5None
    8DEPT802Sustainable Design Practices3-0-2-5ME503

    Advanced Departmental Elective Courses

    The following advanced departmental elective courses are offered in the program, providing students with specialized knowledge and skills in their chosen fields:

    • Robotics and Automation: This course covers the design, analysis, and control of robotic systems. Students learn about kinematics, dynamics, sensor integration, and artificial intelligence applications in robotics.
    • Nanotechnology and Materials: Designed to explore the behavior of materials at the nanoscale, this course focuses on synthesis methods, characterization techniques, and applications in electronics, medicine, and energy systems.
    • Computational Fluid Dynamics: Utilizing numerical methods and software tools, students model fluid flow, heat transfer, and mass transport phenomena to solve real-world engineering problems.
    • Smart Manufacturing Technologies: This course explores Industry 4.0 concepts including IoT, digital twins, predictive maintenance, and automation in manufacturing environments.
    • Advanced Thermodynamics: An extension of introductory thermodynamics, this course covers advanced topics such as chemical reactions, phase equilibria, and thermodynamic cycles used in power generation and refrigeration systems.
    • Energy Storage Systems: Students learn about battery technologies, supercapacitors, hydrogen storage, and grid integration of renewable energy sources to meet growing demand for clean energy solutions.
    • Biomechanics: Applying mechanical principles to biological systems, this course explores the mechanics of human movement, medical device design, and tissue engineering applications.
    • Advanced Control Systems: This course delves into modern control theory, including state-space representation, optimal control, and robust control strategies used in aerospace, automotive, and industrial automation.

    Project-Based Learning Philosophy

    The department places a strong emphasis on project-based learning as a core component of the educational experience. Projects are designed to bridge the gap between theory and practice, allowing students to apply their knowledge in realistic scenarios. Mini-projects begin in the third year and continue through the final year, culminating in a comprehensive capstone project.

    Mini-projects typically last 4–6 weeks and involve small teams working under faculty guidance. Students are expected to identify a problem, design a solution, implement it using available tools and technologies, and present their findings. Evaluation criteria include creativity, technical execution, teamwork, and documentation quality.

    The final-year capstone project is a significant undertaking that spans several months. Students select a topic relevant to current industry challenges or academic research areas. They work closely with faculty mentors throughout the process, which includes literature review, experimental design, data analysis, and final presentation. Successful projects often lead to publications in journals or patents filed by students.