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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Electrical Engineering

    Future University Bareilly
    Duration
    4 Years
    Electrical Engineering UG OFFLINE

    Duration

    4 Years

    Electrical Engineering

    Future University Bareilly
    Duration
    Apply

    Fees

    ₹8,00,000

    Placement

    94.5%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹18,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electrical Engineering
    UG
    OFFLINE

    Fees

    ₹8,00,000

    Placement

    94.5%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹18,00,000

    Seats

    150

    Students

    1,200

    ApplyCollege

    Seats

    150

    Students

    1,200

    Curriculum

    Comprehensive Course Structure

    The Electrical Engineering program at Future University Bareilly is structured over eight semesters, providing a balanced progression from foundational sciences to advanced engineering disciplines.

    SemesterCourse CodeCourse TitleCredits (L-T-P-C)Prerequisites
    1MA101Mathematics I3-1-0-4-
    1PH101Physics I3-1-0-4-
    1EC101Introduction to Electrical Engineering2-0-0-2-
    1CS101Computer Programming2-0-2-4-
    1HS101English for Communication2-0-0-2-
    1EE101Basic Electrical Circuits3-1-0-4-
    1ME101Engineering Mechanics3-1-0-4-
    2MA201Mathematics II3-1-0-4MA101
    2PH201Physics II3-1-0-4PH101
    2EE201Circuit Analysis3-1-0-4EE101
    2EE202Digital Logic Design3-1-0-4EE101
    2CS201Data Structures and Algorithms2-0-2-4CS101
    2EE203Electromagnetic Fields3-1-0-4PH201
    2HS201Communication Skills2-0-0-2-
    3MA301Mathematics III3-1-0-4MA201
    3EE301Signals and Systems3-1-0-4EE201
    3EE302Analog Electronics3-1-0-4EE201
    3EE303Power Electronics3-1-0-4EE201
    3EE304Control Systems3-1-0-4EE201
    3CS301Object-Oriented Programming2-0-2-4CS101
    3EE305Electrical Machines3-1-0-4EE201
    3EE306Microprocessors and Microcontrollers3-1-0-4EE202
    4MA401Mathematics IV3-1-0-4MA301
    4EE401Digital Signal Processing3-1-0-4EE301
    4EE402Communication Systems3-1-0-4EE301
    4EE403Power System Analysis3-1-0-4EE305
    4EE404Embedded Systems3-1-0-4EE306
    4EE405Industrial Training0-0-2-2-
    4EE406Project I0-0-0-3-
    5EE501Advanced Control Systems3-1-0-4EE404
    5EE502Renewable Energy Systems3-1-0-4EE305
    5EE503VLSI Design3-1-0-4EE302
    5EE504Smart Grid Technologies3-1-0-4EE403
    5EE505Signal Processing Applications3-1-0-4EE401
    5EE506Instrumentation and Measurement3-1-0-4EE301
    6EE601AI for Engineering Applications3-1-0-4EE505
    6EE602Advanced Embedded Systems3-1-0-4EE404
    6EE603Power System Protection3-1-0-4EE403
    6EE604Robotics and Automation3-1-0-4EE501
    6EE605Capstone Project I0-0-0-4-
    7EE701Advanced Power Electronics3-1-0-4EE303
    7EE702Research Methodology2-0-0-2-
    7EE703Capstone Project II0-0-0-6-
    7EE704Industrial Internship0-0-2-2-
    8EE801Thesis Proposal0-0-0-3-
    8EE802Final Thesis0-0-0-9-
    8EE803Professional Ethics and Social Responsibility2-0-0-2-

    Detailed Elective Course Descriptions

    The department offers a wide range of advanced elective courses designed to deepen students' understanding and enhance their specialization skills.

    AI for Engineering Applications: This course explores the integration of artificial intelligence techniques with traditional engineering domains. Students learn to apply machine learning algorithms, neural networks, and deep learning models to solve complex engineering problems in areas such as signal processing, control systems, and robotics.

    Advanced Power Electronics: Focusing on modern power conversion techniques, this course covers advanced topologies for DC-DC converters, AC-DC rectifiers, inverters, and other power electronic devices. Emphasis is placed on efficiency optimization, thermal management, and system integration in high-power applications.

    Renewable Energy Systems: Students study various renewable energy sources including solar photovoltaic systems, wind turbines, hydroelectric plants, and geothermal energy. The course includes practical aspects such as grid integration, energy storage solutions, and policy frameworks supporting sustainable energy development.

    VLSI Design: This advanced course introduces students to the principles of Very Large Scale Integration (VLSI) design, covering digital IC design, layout techniques, and CAD tools. Topics include logic synthesis, timing analysis, and physical implementation of integrated circuits.

    Smart Grid Technologies: This course examines smart grid architecture, communication protocols, and intelligent control systems for modern power networks. Students explore topics such as demand response, distributed generation, and cyber security in energy systems.

    Advanced Control Systems: Building upon foundational control theory, this course delves into advanced control strategies including robust control, adaptive control, and optimal control. Practical applications are explored through case studies involving aerospace, automotive, and industrial systems.

    Signal Processing Applications: This elective focuses on real-world applications of signal processing techniques in audio, image, biomedical, and communication domains. Students gain hands-on experience using MATLAB, Python, and other industry-standard tools for processing and analyzing signals.

    Instrumentation and Measurement: The course covers precision measurement techniques and instrumentation design for various physical quantities such as temperature, pressure, flow rate, and electrical parameters. It includes laboratory sessions on sensor integration, calibration, and data acquisition systems.

    Robotics and Automation: Students are introduced to robotics fundamentals including kinematics, dynamics, control systems, and perception technologies. The course emphasizes practical implementation through robotic platforms and simulation environments.

    Power System Protection: This course provides an in-depth understanding of protective relays, fault analysis, and protection coordination in power systems. Students learn to design and implement protection schemes for different types of electrical networks and components.

    Research Methodology: Designed to prepare students for advanced research, this course covers scientific methods, hypothesis testing, data collection, and statistical analysis techniques commonly used in engineering research.

    Project-Based Learning Philosophy

    The Electrical Engineering program at Future University Bareilly places a strong emphasis on project-based learning as a core component of the educational experience. Projects are designed to simulate real-world challenges, encouraging students to apply theoretical knowledge to practical problems while developing critical thinking and problem-solving skills.

    Mini-projects are integrated throughout the curriculum, starting from the first semester with basic circuit design exercises and progressing to complex system integration tasks in later years. These projects typically involve small teams of 3-5 students working under faculty supervision.

    The final-year thesis/capstone project is a significant milestone where students select a research topic aligned with their interests or industry needs. They work closely with a faculty mentor, conduct literature reviews, perform experiments, analyze results, and present findings in both written and oral formats.

    Project selection is guided by student preferences, faculty expertise, and current industry trends. Students are encouraged to propose innovative ideas that address societal or technological challenges. Faculty members play a crucial role in guiding students through the research process, ensuring they gain valuable experience in project management, technical writing, and presentation skills.