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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Chemical Engineering

    Pandit Deendayal Energy University Gandhinagar
    Duration
    4 Years
    Chemical Engineering UG OFFLINE

    Duration

    4 Years

    Chemical Engineering

    Pandit Deendayal Energy University Gandhinagar
    Duration
    Apply

    Fees

    ₹1,80,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Chemical Engineering
    UG
    OFFLINE

    Fees

    ₹1,80,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    Seats

    150

    Students

    300

    ApplyCollege

    Seats

    150

    Students

    300

    Curriculum

    Chemical Engineering Curriculum at Pandit Deendayal Energy University Gandhinagar

    Semester-Wise Course Structure

    The Chemical Engineering curriculum is carefully structured over eight semesters to ensure a progressive and comprehensive learning experience. Each semester includes core subjects, departmental electives, science electives, and laboratory components designed to build upon previous knowledge while introducing new concepts.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Pre-requisites
    1CHM-101Chemistry for Engineers3-0-0-3-
    1MAT-101Mathematics I4-0-0-4-
    1PHY-101Physics for Engineers3-0-0-3-
    1CHE-101Introduction to Chemical Engineering2-0-0-2-
    1ENG-101English for Engineers2-0-0-2-
    1L-101Engineering Drawing & Workshop Practice1-0-3-2-
    2MAT-201Mathematics II4-0-0-4MAT-101
    2CHM-201Organic Chemistry3-0-0-3CHM-101
    2PHY-201Electromagnetism & Optics3-0-0-3PHY-101
    2CHE-201Process Calculations3-0-0-3-
    2ENG-201Communication Skills2-0-0-2-
    2L-201Chemical Engineering Lab I0-0-3-2-
    3MAT-301Mathematics III4-0-0-4MAT-201
    3CHE-301Thermodynamics I3-0-0-3-
    3CHE-302Fluid Mechanics3-0-0-3-
    3CHE-303Heat Transfer3-0-0-3-
    3CHE-304Mass Transfer3-0-0-3-
    3L-301Chemical Engineering Lab II0-0-3-2CHE-201, L-201
    4MAT-401Mathematics IV4-0-0-4MAT-301
    4CHE-401Reaction Engineering I3-0-0-3-
    4CHE-402Process Dynamics & Control3-0-0-3-
    4CHE-403Chemical Process Design3-0-0-3-
    4CHE-404Process Safety & Risk Management3-0-0-3-
    4L-401Chemical Engineering Lab III0-0-3-2CHE-301, CHE-302, CHE-303, CHE-304, L-301
    5CHE-501Reaction Engineering II3-0-0-3CHE-401
    5CHE-502Biochemical Engineering3-0-0-3-
    5CHE-503Environmental Impact Assessment3-0-0-3-
    5CHE-504Materials Science3-0-0-3-
    5L-501Chemical Engineering Lab IV0-0-3-2CHE-401, CHE-402, CHE-403, L-401
    6CHE-601Advanced Process Simulation3-0-0-3CHE-501
    6CHE-602Data Analytics in Chemical Engineering3-0-0-3-
    6CHE-603Nanotechnology and Smart Materials3-0-0-3-
    6CHE-604Sustainable Process Design3-0-0-3-
    6L-601Chemical Engineering Lab V0-0-3-2CHE-501, CHE-502, L-501
    7CHE-701Mini Project I0-0-0-3-
    7CHE-702Special Topics in Chemical Engineering3-0-0-3-
    7CHE-703Process Optimization Techniques3-0-0-3-
    7CHE-704Advanced Materials Characterization3-0-0-3-
    7L-701Chemical Engineering Lab VI0-0-3-2CHE-601, CHE-602, L-601
    8CHE-801Final Year Project / Thesis0-0-0-6-

    Advanced Departmental Electives

    Departmental electives are offered in the latter years of the program to allow students to specialize in areas aligned with their interests and career goals. These courses are taught by renowned faculty members and often involve cutting-edge research.

    • Renewable Energy Technologies: This course explores the principles and applications of solar, wind, hydroelectric, and bioenergy systems within chemical engineering frameworks. Students learn about energy conversion mechanisms, efficiency optimization, and environmental impact assessment.
    • Bioprocess Engineering: Designed for students interested in biological systems, this elective covers fermentation processes, bioreactor design, product recovery, and downstream processing techniques used in pharmaceuticals and biofuels.
    • Advanced Process Control: This course introduces advanced control strategies including PID tuning, state-space methods, model predictive control, and industrial automation technologies. Students gain hands-on experience with PLC programming and SCADA systems.
    • Sustainable Materials Design: Focused on developing environmentally friendly materials, this course teaches students how to select, synthesize, and characterize sustainable polymers, composites, and nanomaterials for industrial applications.
    • Computational Fluid Dynamics: Using numerical methods, students simulate fluid flow behavior in various chemical engineering systems. The course includes practical sessions with software like ANSYS Fluent and STAR-CCM+.
    • Membrane Separation Processes: This elective focuses on membrane technologies used for water treatment, gas separation, and pharmaceutical purification. Students learn about membrane fabrication, characterization, and process optimization.
    • Carbon Capture and Utilization: A critical topic in climate change mitigation, this course covers methods of capturing CO2 emissions from industrial sources and converting them into useful products such as fuels and chemicals.
    • Nanomaterials Synthesis and Applications: This course explores the synthesis, properties, and applications of nanomaterials including nanoparticles, nanotubes, and quantum dots in chemical engineering processes.
    • Industrial Safety and Risk Assessment: Students learn how to assess risks associated with chemical plants and implement safety protocols. Topics include hazard identification, risk analysis, emergency response planning, and regulatory compliance.
    • Data Mining in Chemical Engineering: This course teaches students how to apply data science techniques to chemical engineering problems including regression analysis, clustering, classification, and neural networks for process optimization.

    Project-Based Learning Philosophy

    The Chemical Engineering program strongly emphasizes project-based learning as a cornerstone of its educational philosophy. Projects are designed to be both challenging and relevant to real-world industrial scenarios, encouraging creativity, teamwork, and innovation.

    Mini-projects begin in the seventh semester and involve small groups of students working under faculty supervision on specific engineering problems. These projects typically last 3–4 months and culminate in presentations, reports, and peer reviews. Students are encouraged to propose their own ideas or select from a list of industry-sponsored topics.

    The final-year thesis or capstone project is a major undertaking that requires students to conduct original research or develop a complete process design solution for an industrial client. This project involves extensive literature review, experimental work (if applicable), data analysis, and technical documentation. Faculty mentors guide students throughout the process, ensuring they meet academic standards and industry expectations.

    Project selection is based on student interest, faculty availability, and alignment with departmental research areas. Students may choose to work in teams or independently, depending on the scope and nature of the project. Regular milestones and progress reviews ensure timely completion and quality outcomes.