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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Structural Design

    Balwant Singh Mukhiya Bsm College Of Engineering
    Duration
    4 Years
    Structural Design UG OFFLINE

    Duration

    4 Years

    Structural Design

    Balwant Singh Mukhiya Bsm College Of Engineering
    Duration
    Apply

    Fees

    ₹3,00,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Structural Design
    UG
    OFFLINE

    Fees

    ₹3,00,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    Seats

    120

    Students

    120

    ApplyCollege

    Seats

    120

    Students

    120

    Curriculum

    Course Structure Overview

    The Structural Design program is structured over eight semesters, with a balanced mix of foundational science subjects, core engineering courses, departmental electives, and practical laboratory sessions. Each semester carries a credit structure designed to ensure comprehensive understanding and application of concepts.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1MAT101Mathematics I3-1-0-4-
    1PHY101Physics I3-1-0-4-
    1CHE101Chemistry I3-1-0-4-
    1EG101Engineering Graphics2-1-0-3-
    1CSE101Introduction to Computing2-1-0-3-
    1EC101Electrical & Electronic Engineering3-1-0-4-
    2MAT201Mathematics II3-1-0-4MAT101
    2PHY201Physics II3-1-0-4PHY101
    2CIV101Introduction to Civil Engineering3-1-0-4-
    2MEC101Mechanics of Materials3-1-0-4MAT101, PHY101
    2CHM101Chemistry II3-1-0-4CHE101
    2EG201Engineering Mechanics3-1-0-4MAT101, PHY101
    3MAT301Mathematics III3-1-0-4MAT201
    3MEC201Strength of Materials3-1-0-4MEC101
    3CIV201Structural Analysis I3-1-0-4MAT201, MEC101
    3CHM201Chemistry III3-1-0-4CHE101
    3ECE201Electronics Engineering3-1-0-4EC101
    3CIV301Construction Materials3-1-0-4-
    4MAT401Mathematics IV3-1-0-4MAT301
    4CIV302Structural Analysis II3-1-0-4CIV201
    4MEC301Design of Steel Structures3-1-0-4MEC201, CIV201
    4CIV303Design of Concrete Structures3-1-0-4MEC201, CIV201
    4MEC401Foundation Engineering3-1-0-4CIV201, MEC201
    4CHM301Chemistry IV3-1-0-4CHM201
    5CIV401Earthquake Engineering3-1-0-4CIV302, MEC301
    5CIV402Bridge Engineering3-1-0-4CIV302
    5CIV403High-Rise Building Systems3-1-0-4CIV302, MEC301
    5CIV404Structural Dynamics3-1-0-4MAT401, CIV302
    5MEC402Prestressed Concrete Design3-1-0-4CIV303
    5ECE301Control Systems3-1-0-4-
    6CIV501Sustainable Construction3-1-0-4CIV401, CIV402
    6CIV502Infrastructure Resilience3-1-0-4CIV401, CIV402
    6CIV503Computational Structural Engineering3-1-0-4CIV404
    6CIV504Structural Health Monitoring3-1-0-4CIV404
    6MEC501Advanced Finite Element Methods3-1-0-4MEC401
    6ECE401Signals and Systems3-1-0-4ECE201
    7CIV601Advanced Structural Analysis3-1-0-4CIV501, CIV502
    7CIV602Special Topics in Structural Design3-1-0-4CIV503, CIV504
    7CIV603Research Methodology2-1-0-3-
    7ECE501Machine Learning in Engineering3-1-0-4ECE401
    7CIV604Internship0-0-0-2-
    8CIV701Final Year Project3-1-0-4CIV601, CIV602
    8CIV702Capstone Thesis3-1-0-4CIV701
    8CIV703Professional Ethics & Communication2-1-0-3-
    8ECE601Advanced Control Systems3-1-0-4ECE401
    8CIV704Elective Course I3-1-0-4-
    8CIV705Elective Course II3-1-0-4-

    Detailed Departmental Elective Courses

    These advanced elective courses are designed to deepen students' understanding of specialized areas within structural design and expose them to contemporary engineering challenges.

    Advanced Finite Element Methods

    This course explores sophisticated numerical techniques used in structural analysis. Students learn how to implement finite element models using industry-standard software, analyze nonlinear behavior, and validate results through experimental methods. The course emphasizes both theoretical foundations and practical applications in real-world projects.

    Sustainable Construction

    Focusing on green building practices, this course covers sustainable materials selection, energy efficiency standards, life cycle assessment methodologies, and environmental impact reduction strategies. Students engage in case studies of eco-friendly buildings and develop proposals for integrating sustainability into structural design processes.

    Computational Structural Engineering

    This course introduces students to computational tools and modeling techniques essential for modern structural analysis. Topics include numerical integration, mesh generation, optimization algorithms, and artificial intelligence applications in engineering simulations. Practical sessions involve hands-on work with ANSYS, MATLAB, and other industry platforms.

    Infrastructure Resilience

    Students explore frameworks for designing resilient infrastructure systems that can withstand natural disasters, climate change impacts, and human-induced hazards. The course combines theory with practical design exercises, focusing on risk assessment, vulnerability analysis, and adaptive engineering solutions.

    Structural Health Monitoring

    This course focuses on sensor technologies, data analytics, and real-time monitoring systems for assessing structural performance. Students learn how to install and interpret data from sensors, analyze structural health using machine learning techniques, and implement early warning systems for critical infrastructure.

    Seismic Design & Retrofitting

    Students study earthquake-resistant design principles and retrofitting strategies for existing structures. The course includes hands-on experiments in seismic testing, case studies of past earthquakes, and development of retrofit plans for vulnerable buildings using modern engineering techniques.

    Prestressed Concrete Design

    This advanced topic covers the design and analysis of prestressed concrete elements, including beam systems, slab designs, and post-tensioned structures. Students gain experience in design software, material testing, and optimization of prestressing schemes for improved structural performance.

    Bridge Engineering

    The course provides comprehensive coverage of bridge types, design considerations, construction methods, and maintenance practices. Students work on design challenges related to different bridge configurations, including suspension, cable-stayed, and arch bridges, using industry-standard tools and simulation software.

    High-Rise Building Systems

    Focused on tall building engineering, this course addresses structural stability, wind load considerations, fire safety protocols, and vertical transportation systems. Students design high-rise structures considering dynamic behavior, seismic response, and regulatory compliance requirements.

    Structural Dynamics

    This course delves into the dynamic behavior of structures under various loading conditions including earthquakes, wind loads, and blast effects. Students learn modal analysis techniques, response spectrum methods, and time history analysis using computer simulation tools.

    Project-Based Learning Philosophy

    Our department places significant emphasis on project-based learning to enhance student engagement and practical understanding of structural design principles. Mini-projects are introduced in the third year, allowing students to apply theoretical knowledge to real-world scenarios under faculty guidance. These projects involve site visits, data collection, analysis, and presentation.

    The final-year thesis/capstone project is a culminating experience where students select a topic aligned with their interests and career goals. Projects are typically developed in collaboration with industry partners or research institutions, providing exposure to current engineering challenges and professional practices.

    Faculty mentors are assigned based on student preferences and project relevance. The evaluation criteria include technical proficiency, innovation, presentation quality, peer review, and adherence to safety and ethical standards. Regular progress meetings and milestone reviews ensure that students stay on track towards successful completion of their projects.