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

    Duration

    4 Years

    Electrical Engineering

    Government Polytechnic Bash Bagarh
    Duration
    4 Years
    Electrical UG OFFLINE

    Duration

    4 Years

    Electrical Engineering

    Government Polytechnic Bash Bagarh
    Duration
    Apply

    Fees

    ₹1,20,000

    Placement

    93.0%

    Avg Package

    ₹5,50,000

    Highest Package

    ₹9,50,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electrical
    UG
    OFFLINE

    Fees

    ₹1,20,000

    Placement

    93.0%

    Avg Package

    ₹5,50,000

    Highest Package

    ₹9,50,000

    Seats

    120

    Students

    300

    ApplyCollege

    Seats

    120

    Students

    300

    Curriculum

    Curriculum Overview

    The Electrical Engineering curriculum at Government Polytechnic Bash Bagarh is meticulously designed to provide students with a strong foundation in both fundamental and advanced concepts, preparing them for diverse career paths in the rapidly evolving field of electrical engineering.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1MA101Mathematics I3-1-0-4-
    1PH101Physics3-1-0-4-
    1CH101Chemistry3-1-0-4-
    1CS101Computer Programming2-0-2-3-
    1EG101Engineering Graphics2-0-2-3-
    1EC101Basic Electrical Engineering3-1-0-4-
    1EP101Engineering Physics Lab0-0-2-1-
    1EC102Electrical Engineering Lab0-0-2-1-
    2MA102Mathematics II3-1-0-4MA101
    2PH102Physics II3-1-0-4PH101
    2EC201Circuit Analysis3-1-0-4EC101
    2EC202Electronics Devices3-1-0-4EC101
    2EC203Signals & Systems3-1-0-4MA102, EC201
    2EC204Digital Logic Design3-1-0-4EC101
    2EC205Electrical Machines I3-1-0-4EC101
    2EP201Electronic Lab0-0-2-1-
    3MA201Mathematics III3-1-0-4MA102
    3EC301Power System Analysis3-1-0-4EC201, EC205
    3EC302Control Systems3-1-0-4EC203
    3EC303Microprocessor Architecture3-1-0-4EC204
    3EC304Embedded Systems3-1-0-4EC303
    3EC305Electrical Machines II3-1-0-4EC205
    3EC306Power Electronics3-1-0-4EC202
    3EP301Control Systems Lab0-0-2-1-
    3EP302Microcontroller Lab0-0-2-1-
    4EC401Renewable Energy Systems3-1-0-4EC301, EC306
    4EC402Signal Processing3-1-0-4EC203
    4EC403Communication Systems3-1-0-4EC203
    4EC404Advanced Control Systems3-1-0-4EC302
    4EC405Industrial Electronics3-1-0-4EC202, EC306
    4EC406Research Methodology2-0-0-2-
    4EP401Power Electronics Lab0-0-2-1-
    4EP402Signal Processing Lab0-0-2-1-
    5EC501Power System Protection3-1-0-4EC301
    5EC502Wireless Communication3-1-0-4EC403
    5EC503Smart Grid Technologies3-1-0-4EC301
    5EC504Machine Learning Applications3-1-0-4EC203, EC402
    5EC505Advanced Embedded Systems3-1-0-4EC304
    5EC506Project Management2-0-0-2-
    5EP501Smart Grid Lab0-0-2-1-
    6EC601Research & Development Project3-0-0-3EC406, EC506
    6EC602Capstone Project3-0-0-3-
    6EC603Special Topics in Electrical Engineering3-1-0-4-
    6EC604Industrial Training0-0-0-2-
    6EP601Final Year Project Lab0-0-4-2-

    Advanced Departmental Electives

    Departmental electives are offered to allow students to specialize in areas of interest and gain deeper knowledge relevant to their career goals.

    Renewable Energy Systems

    This elective course focuses on the principles, technologies, and applications of renewable energy systems including solar photovoltaics, wind power, hydroelectricity, and geothermal energy. Students study energy conversion processes, grid integration challenges, and environmental impact assessments.

    Smart Grid Technologies

    This course explores the evolution of traditional power grids into smart grids using advanced sensors, communication networks, and control systems. Topics include demand response management, real-time monitoring, cyber security, and integration of distributed energy resources.

    Machine Learning Applications in Electrical Engineering

    This elective introduces students to machine learning algorithms and their applications in electrical engineering domains such as signal processing, power system optimization, predictive maintenance, and fault detection. Students learn to implement models using Python, TensorFlow, and scikit-learn libraries.

    Advanced Control Systems

    Building upon basic control theory, this course delves into advanced topics like state-space representation, nonlinear control, robust control, adaptive control, and optimal control methods. Practical implementation using MATLAB/Simulink is emphasized.

    Wireless Communication Systems

    This course covers modern wireless communication technologies including cellular networks, satellite communications, Wi-Fi, Bluetooth, and 5G standards. Students study modulation techniques, channel coding, multiple access schemes, and network protocols.

    Advanced Embedded Systems

    This elective focuses on designing and developing complex embedded systems using microcontrollers, real-time operating systems, and hardware-software co-design principles. Students work on projects involving IoT devices, robotics, and smart sensors.

    Industrial Electronics and Instrumentation

    This course addresses the design and application of electronic systems used in industrial environments including measurement instruments, control systems, PLCs, SCADA, and automation technologies. Practical labs involve programming industrial controllers and integrating them with sensors.

    Power System Protection

    This subject covers protective relaying, fault analysis, and protection coordination in power systems. Students learn about various types of relays, protection schemes, and system reliability issues in electrical power networks.

    Signal Processing for Communications

    This course examines signal processing techniques applied to communication systems including filtering, modulation, demodulation, and error correction. Students gain hands-on experience with digital signal processors and simulation tools like MATLAB.

    Advanced Power Electronics

    This elective explores advanced topics in power electronics such as switching circuits, inverters, rectifiers, DC-DC converters, and resonant converters. Students study design principles, efficiency optimization, and application-specific configurations.

    Project-Based Learning Philosophy

    The department strongly believes in project-based learning as a means to bridge the gap between academic knowledge and practical application. Projects are assigned at different levels of complexity throughout the program, starting from foundational mini-projects in early semesters to comprehensive final-year capstone projects.

    Mini-projects in first and second years focus on reinforcing theoretical concepts through laboratory experiments and small-scale implementations. These projects often involve circuit design, simulation, and testing using standard equipment available in departmental labs.

    The third year introduces more sophisticated projects that require integration of multiple disciplines such as power systems, control theory, and electronics. Students are encouraged to collaborate with faculty members or external organizations to develop innovative solutions to real-world engineering problems.

    Final-year thesis/capstone projects provide students with the opportunity to engage in independent research under the supervision of experienced faculty mentors. The process involves selecting a relevant topic, conducting literature review, designing methodology, implementing solution, and presenting findings in a formal report and defense session.

    Students are guided through the project selection process by faculty advisors who help align interests with current industry trends and research areas. Mentorship includes regular meetings, progress reviews, resource allocation, and feedback sessions to ensure successful completion of projects.