Collegese

Welcome to Collegese! Sign in →

Collegese

    Search colleges and courses

    Search and navigate to colleges and courses

    Start your journey

    Ready to find your dream college?

    Join thousands of students making smarter education decisions.

    Watch How It WorksGet Started

    Discover

    Browse & filter colleges

    Compare

    Side-by-side analysis

    Explore

    Detailed course info

    Collegese

    India's education marketplace helping students discover the right colleges, compare courses, and build careers they deserve.

    © 2026 Collegese. All rights reserved. A product of Nxthub Consulting Pvt. Ltd.

    Apply

    Scholarships & exams

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

    Duration

    4 Years

    Electrical Engineering

    University Institute of Technology, Barkatullah University
    Duration
    4 Years
    Electrical Engineering UG OFFLINE

    Duration

    4 Years

    Electrical Engineering

    University Institute of Technology, Barkatullah University
    Duration
    Apply

    Fees

    ₹1,48,000

    Placement

    96.0%

    Avg Package

    ₹7,80,000

    Highest Package

    ₹15,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electrical Engineering
    UG
    OFFLINE

    Fees

    ₹1,48,000

    Placement

    96.0%

    Avg Package

    ₹7,80,000

    Highest Package

    ₹15,00,000

    Seats

    120

    Students

    350

    ApplyCollege

    Seats

    120

    Students

    350

    Curriculum

    Curriculum

    The curriculum for Electrical Engineering at UNIVERSITY INSTITUTE OF TECHNOLOGY BARKATULLAH UNIVERSITY is meticulously structured to provide students with a strong foundation in core engineering principles while enabling specialization through advanced courses and practical applications. The program spans eight semesters, integrating theoretical knowledge with hands-on experience to ensure students are well-prepared for both industry roles and higher studies.

    Course Structure Overview

    The academic journey is divided into foundational, core, and specialized phases:

    • First Year: Focuses on building a solid base in mathematics, physics, and basic engineering concepts. Students are introduced to fundamental electrical principles through courses like Engineering Mathematics I, Physics for Engineers, and Basic Electrical Engineering.
    • Second Year: Deepens understanding of circuits, signals, electronics, and electromagnetics. Core subjects include Circuit Analysis, Electronic Devices, Signals and Systems, and Electromagnetic Fields.
    • Third Year: Introduces specialized areas such as electrical machines, power systems, control theory, and digital logic design. Students also begin exploring departmental electives based on their interests.
    • Fourth Year: Emphasizes advanced topics in power electronics, communication systems, embedded systems, and VLSI design. This year also includes a capstone project component where students work on real-world engineering challenges.

    This phased approach ensures that students build upon previously acquired knowledge while gradually transitioning from basic to complex concepts. The curriculum is designed with flexibility in mind, allowing students to tailor their educational experience through elective choices and project opportunities.

    Comprehensive Course List

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1EE101Engineering Mathematics I3-1-0-4-
    1EE102Physics for Engineers3-1-0-4-
    1EE103Basic Electrical Engineering3-1-0-4-
    1EE104Engineering Graphics & Design2-1-0-3-
    1EE105Programming for Engineers2-0-2-3-
    1EE106Engineering Workshop0-0-3-2-
    2EE201Engineering Mathematics II3-1-0-4EE101
    2EE202Electromagnetic Fields & Waves3-1-0-4EE102
    2EE203Circuit Analysis and Design3-1-0-4EE103
    2EE204Signals and Systems3-1-0-4EE101
    2EE205Electronic Devices & Circuits3-1-0-4EE103
    2EE206Lab: Basic Electrical Engineering0-0-3-2-
    3EE301Network Theory3-1-0-4EE203
    3EE302Electrical Machines I3-1-0-4EE203
    3EE303Digital Electronics & Logic Design3-1-0-4EE205
    3EE304Control Systems3-1-0-4EE204
    3EE305Power System Analysis3-1-0-4EE203
    3EE306Lab: Circuit Analysis & Design0-0-3-2-
    4EE401Electrical Machines II3-1-0-4EE302
    4EE402Power Electronics3-1-0-4EE302
    4EE403Microprocessors and Microcontrollers3-1-0-4EE303
    4EE404Communication Systems3-1-0-4EE204
    4EE405Electromagnetic Compatibility & Signal Integrity3-1-0-4EE202
    4EE406Lab: Power Electronics0-0-3-2-
    5EE501Renewable Energy Systems3-1-0-4EE305
    5EE502Embedded Systems3-1-0-4EE403
    5EE503Advanced Control Systems3-1-0-4EE304
    5EE504Power System Protection3-1-0-4EE305
    5EE505Digital Signal Processing3-1-0-4EE204
    5EE506Lab: Embedded Systems0-0-3-2-
    6EE601Smart Grid Technologies3-1-0-4EE501
    6EE602VLSI Design3-1-0-4EE303
    6EE603Advanced Power Electronics3-1-0-4EE402
    6EE604Wireless Communication3-1-0-4EE404
    6EE605Industrial Project Management3-1-0-4-
    6EE606Lab: VLSI Design0-0-3-2-
    7EE701Research Methodology2-0-0-2-
    7EE702Capstone Project I2-0-6-4-
    7EE703Advanced Topics in Electrical Engineering3-1-0-4-
    7EE704Electronics and Communication Engineering Lab0-0-3-2-
    8EE801Capstone Project II2-0-6-4-
    8EE802Professional Ethics & Social Responsibility2-0-0-2-
    8EE803Final Year Project2-0-6-4-

    Detailed Course Descriptions

    The department offers a rich selection of advanced elective courses that enable students to explore specialized areas within Electrical Engineering:

    • Advanced Power Electronics: This course covers the design and analysis of power converters, inverters, and rectifiers used in renewable energy systems and industrial applications. Students learn about switching devices, control techniques, and efficiency optimization methods.
    • Embedded Systems Design: This elective explores microcontroller architectures, real-time operating systems, and hardware-software co-design principles. It emphasizes practical implementation through lab sessions using ARM-based platforms.
    • Digital Signal Processing: Students study discrete-time signals and systems, Z-transforms, Fast Fourier Transform (FFT), and filter design. The course includes hands-on projects involving MATLAB/Simulink simulations and real-time DSP implementation.
    • Smart Grid Technologies: This course addresses the integration of renewable energy sources into the power grid, demand response management, smart metering systems, and cybersecurity in electrical networks.
    • VLSI Design: Focused on the design of integrated circuits using CMOS technology, this course covers layout design, simulation tools, and fabrication processes. Students implement designs using CAD tools like Cadence and Synopsys.
    • Wireless Communication Systems: The course covers wireless channel modeling, modulation schemes, error correction codes, and multiple access techniques. It includes practical exposure to 5G technologies and software-defined radio platforms.
    • Control Systems with Applications: This advanced course explores nonlinear control systems, state-space methods, and adaptive control strategies. It provides insights into industrial applications in robotics, aerospace, and automation systems.
    • Renewable Energy Conversion: Students learn about solar cell physics, wind turbine design, hydroelectric power generation, and energy storage technologies. Case studies from global projects provide real-world context.
    • Power System Protection: This course focuses on protection relays, fault analysis, and stability studies in power systems. Practical case studies from major utilities in India illustrate system design and operation principles.
    • Advanced Microprocessors: Students study microprocessor architecture, instruction set design, pipeline techniques, and cache memory optimization. The course includes hands-on programming using assembly language and C++.

    Project-Based Learning Philosophy

    The department strongly advocates for project-based learning as a core component of the curriculum. Mini-projects are assigned in the third and fourth semesters, allowing students to apply theoretical knowledge in practical scenarios. These projects typically involve working with real-world data or physical systems, encouraging innovation and teamwork.

    For the final-year capstone project, students select a topic aligned with their interests or industry needs. Each student is paired with a faculty mentor who guides them through the research process, experimental design, documentation, and presentation. Projects are evaluated based on technical depth, originality, presentation quality, and impact potential.

    Capstone Project Structure

    The final-year capstone project spans two semesters (seventh and eighth) and involves a comprehensive engineering challenge. Students must:

    • Select a relevant topic aligned with departmental expertise or industry trends
    • Develop a research proposal outlining objectives, methodology, and expected outcomes
    • Conduct experiments or simulations using appropriate tools and techniques
    • Document findings in a detailed report following academic standards
    • Present results to faculty panels and industry experts

    Evaluation criteria include:

    • Technical depth and accuracy of analysis
    • Innovation and creativity in solution design
    • Clarity of presentation and communication skills
    • Impact on real-world applications or theoretical advancement
    • Collaboration and teamwork during project execution

    The department provides dedicated guidance through faculty mentors, access to advanced laboratories, and collaboration opportunities with industry partners. This ensures that students not only complete projects successfully but also gain valuable experience in engineering practice.