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

    Duration

    4 Years

    Chemical Engineering

    University Of Petroleum And Energy Studies Dehradun
    Duration
    4 Years
    Chemical Engineering UG OFFLINE

    Duration

    4 Years

    Chemical Engineering

    University Of Petroleum And Energy Studies Dehradun
    Duration
    Apply

    Fees

    ₹15,00,000

    Placement

    92.0%

    Avg Package

    ₹6,00,000

    Highest Package

    ₹12,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Chemical Engineering
    UG
    OFFLINE

    Fees

    ₹15,00,000

    Placement

    92.0%

    Avg Package

    ₹6,00,000

    Highest Package

    ₹12,00,000

    Seats

    120

    Students

    1,200

    ApplyCollege

    Seats

    120

    Students

    1,200

    Curriculum

    Chemical Engineering Curriculum at University Of Petroleum And Energy Studies Dehradun

    The Chemical Engineering program at University Of Petroleum And Energy Studies Dehradun is structured to provide students with a comprehensive understanding of core principles and advanced applications in the field. The curriculum is designed to be both rigorous and practical, ensuring that students are well-prepared for industry challenges and research opportunities.

    The program spans four years, with each academic year divided into two semesters. The curriculum is carefully crafted to build upon foundational knowledge and progressively introduce more specialized topics. Students begin with basic sciences and mathematics before advancing to core chemical engineering principles and then to specialized areas of interest.

    Year 1: Foundation and Core Concepts

    The first year focuses on building a strong foundation in mathematics, physics, and chemistry. Students are introduced to fundamental concepts that form the basis of chemical engineering. The curriculum includes courses such as Engineering Mathematics, Physics for Engineers, General Chemistry, and Introduction to Engineering.

    These foundational courses are complemented by laboratory sessions that provide hands-on experience with basic equipment and procedures. Students learn to conduct experiments, analyze data, and apply theoretical knowledge to practical problems.

    Year 2: Core Engineering Principles

    The second year introduces students to core engineering principles that are essential for chemical engineering. Courses such as Fluid Mechanics, Heat Transfer, Mass Transfer, and Thermodynamics are covered in depth. These courses provide students with the theoretical background needed to understand and analyze chemical processes.

    Students also begin to explore process design and unit operations. Laboratory sessions in this year focus on applying theoretical concepts to real-world scenarios. Students gain experience in operating equipment and conducting experiments related to heat and mass transfer.

    Year 3: Specialized Areas and Electives

    The third year allows students to specialize in areas of interest through elective courses. Students can choose from a variety of electives that align with their career goals and research interests. The curriculum includes advanced courses in process design, reaction engineering, and environmental engineering.

    Students also engage in more complex laboratory work and begin to work on mini-projects. These projects provide an opportunity to apply knowledge gained in earlier years to solve practical problems.

    Year 4: Capstone and Advanced Research

    The final year is dedicated to capstone projects and advanced research. Students work on comprehensive projects that integrate knowledge from all previous years. These projects often involve collaboration with industry partners and provide students with valuable experience in real-world engineering challenges.

    Students also have the opportunity to pursue independent research under the guidance of faculty members. This research experience prepares students for graduate studies or professional careers in industry.

    Semester-wise Course Structure

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1CH101Engineering Mathematics I3-1-0-4None
    1CH102Physics for Engineers3-1-0-4None
    1CH103General Chemistry3-1-0-4None
    1CH104Introduction to Engineering2-0-2-3None
    1CH105English for Engineers2-0-0-2None
    1CH106Basic Laboratory Practices0-0-3-1None
    2CH201Engineering Mathematics II3-1-0-4CH101
    2CH202Thermodynamics3-1-0-4CH103
    2CH203Fluid Mechanics3-1-0-4CH102
    2CH204Heat Transfer3-1-0-4CH201
    2CH205Mass Transfer3-1-0-4CH201
    2CH206Chemical Process Calculations3-1-0-4CH103
    2CH207Basic Laboratory Practices II0-0-3-1CH106
    3CH301Reaction Engineering3-1-0-4CH202, CH205
    3CH302Process Design and Analysis3-1-0-4CH202, CH203, CH204
    3CH303Unit Operations3-1-0-4CH203, CH204, CH205
    3CH304Process Control3-1-0-4CH201, CH202
    3CH305Environmental Engineering3-1-0-4CH202, CH205
    3CH306Chemical Engineering Thermodynamics3-1-0-4CH202
    3CH307Advanced Laboratory Practices0-0-3-1CH207
    4CH401Process Simulation and Modeling3-1-0-4CH301, CH302
    4CH402Bioprocess Engineering3-1-0-4CH301, CH303
    4CH403Materials Science and Engineering3-1-0-4CH202, CH203
    4CH404Energy Systems and Renewable Technologies3-1-0-4CH202, CH204
    4CH405Pharmaceutical Engineering3-1-0-4CH301, CH303
    4CH406Computational Chemical Engineering3-1-0-4CH301, CH401
    4CH407Capstone Project0-0-6-3CH301, CH302, CH303
    4CH408Industrial Safety and Risk Management3-1-0-4CH305

    Advanced Departmental Electives

    Advanced departmental electives provide students with opportunities to explore specialized areas of interest. These courses are designed to offer in-depth knowledge and practical skills in specific domains.

    Bioprocess Engineering

    This course focuses on the design and operation of bioprocesses for the production of pharmaceuticals, biofuels, and other bioproducts. Students learn about fermentation technology, bioreactor design, and downstream processing. The course includes laboratory sessions that provide hands-on experience with bioprocessing equipment.

    Materials Science and Engineering

    This course covers the development and characterization of new materials. Students learn about polymer science, nanomaterials, and advanced manufacturing techniques. The course includes laboratory sessions that provide experience with materials characterization equipment.

    Energy Systems and Renewable Technologies

    This course focuses on sustainable energy solutions. Students learn about solar energy, wind power, and other renewable technologies. The course also covers energy storage systems and energy efficiency optimization. Laboratory sessions provide experience with renewable energy systems.

    Pharmaceutical Engineering

    This course focuses on the design and operation of pharmaceutical manufacturing processes. Students learn about drug development, quality control, and regulatory compliance. The course includes laboratory sessions that provide experience with pharmaceutical manufacturing equipment.

    Computational Chemical Engineering

    This course uses computer modeling and simulation to solve complex engineering problems. Students learn about process simulation, data analytics, and artificial intelligence. The course includes laboratory sessions that provide experience with simulation software.

    Industrial Safety and Risk Management

    This course focuses on ensuring safety in chemical plants and industrial facilities. Students learn about risk assessment, safety protocols, and emergency response systems. The course includes laboratory sessions that provide experience with safety equipment.

    Green Chemistry and Sustainable Manufacturing

    This course emphasizes sustainable practices and environmental protection in chemical processes. Students learn about waste management, pollution control, and green technologies. The course includes laboratory sessions that provide experience with sustainable manufacturing processes.

    Process Control and Automation

    This course focuses on the design and implementation of automated control systems in chemical processes. Students learn about process control theory, instrumentation, and automation technologies. The course includes laboratory sessions that provide experience with control systems.

    Advanced Reaction Engineering

    This course delves into complex reaction mechanisms and kinetics. Students learn about catalysis, reaction modeling, and process optimization. The course includes laboratory sessions that provide experience with advanced reaction engineering techniques.

    Environmental Impact Assessment

    This course focuses on assessing the environmental impact of chemical processes and projects. Students learn about environmental regulations, impact assessment methodologies, and mitigation strategies. The course includes laboratory sessions that provide experience with environmental assessment tools.

    Project-Based Learning Philosophy

    The department's philosophy on project-based learning is rooted in the belief that practical experience is essential for developing competent engineers. Students are encouraged to apply theoretical knowledge to real-world problems through a series of projects that span their academic journey.

    The first project is a mini-project that students undertake in their second year. This project is designed to help students apply fundamental concepts to practical problems. Students work in teams to design and conduct experiments, analyze data, and present their findings.

    The second project is a major project that students undertake in their third year. This project involves more complex problems and requires students to integrate knowledge from multiple courses. Students work closely with faculty mentors to develop innovative solutions.

    Final-Year Thesis/Capstone Project

    The final-year thesis or capstone project is a significant component of the program. Students work on comprehensive projects that integrate knowledge from all previous years. These projects often involve collaboration with industry partners and provide students with valuable experience in real-world engineering challenges.

    Students select their projects based on their interests and career goals. Faculty mentors are assigned based on the project topic and the expertise of the faculty member. The project is evaluated based on several criteria, including technical merit, innovation, and presentation quality.

    The capstone project provides students with an opportunity to showcase their skills and knowledge. It also serves as a bridge between academic learning and professional practice. Students often find that the skills and knowledge gained through the capstone project are invaluable for their future careers.