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Top career options in EV Industry
Industry-recognized & government approved EV certification

Industry Oriented EV Course Curriculum
To learn more about the course download the brochure
1 . EV Business
- Course Overview
- Starting with the Electric vehicle technology
- Electric Vehicle Design Procedure and ICE model
- Industry collaboration
- Electric Vehicle & Retrofitting
- Retrofitting Components and Status In India
- Motor Technology
- EV Motor Market analysis
- EV Homologation Guidelines
- EV Categories and Proposed Changes
- Battery Technology in EV
- EV Battery Market Analysis
- Live Classes
This project focuses on analyzing the EV sector in India, including market study and technical documentation. It explores the demand for EV charging stations amid privatization, renewable energy growth, and addresses key challenges like infrastructure, battery costs, and location selection to promote EV adoption.
2 . EV Fundamentals
- Overview
- Basic electrical circuit analysis
- Power Electronics & Storage
- Variety Of EV
- Basics of EV
- EV Fundamentals - Battery
- Battery Management System
- Design rules & Motor technology
- EV Components
- Electrical Vehicle Calculations
- Live Concept Class
This case study focuses on battery and BMS calculations for Lithium-Ion battery systems. A Battery Management System (BMS) is crucial for real-time cell control, communication, SOC calculation, and more. BMS choice affects battery pack quality and lifespan, vital for energy storage and electric vehicles. Accurate parameter estimation ensures proper sizing and long-term performance.
3 . EV Advanced Certification
- Getting Started
- Introduction Series
- Introduction to power distribution in EV
- Power flow in EV
- Electronic Control System
- EV Certifications and Governing Bodies in India
- Battery & motor selection process
- Converter and controller selection process
- Live Concept Class
4 . Analog & Digital Electronics
- Overview
- Introduction to semiconductor electronics
- Semiconductor diodes, biasing and characteristics
- Rectifiers and filters in electronics systems
- Clipper, Clamper & special purpose diode
- Optoelectronics devices & Diode applications
- Bipolar Junction Transistors (BJT)
- Field Effect Transistors (FET)
- MOSFET
- The Insulated Gate Bipolar Transistor
- Op-amp
- Number System
- Boolean Algebra
- Logic gates
- Microcontrollers
- Circuit Design & Simulation using Proteus
- Live Concept Class
Design a +5 V DC-regulated power supply capable of delivering up to 250mA to the load. Investigate the roles of the Zener diode and filter capacitor in the regulated power supply. The project involves creating a block diagram, component selection, and mathematical expressions for achieving a stable 5V output.
5 . MATLAB® Certification Course
- Getting Started
- Overview
- MATLAB Intermediate
- Plotting and Graphics
- Algebra, Calculus, Differential, & Integration
- Polynomials & Transforms
- Simulink & Fitting
- Advisor and QSS Toolbox
- MathWorks Certification
- Live Concept Class
Design a powertrain system quickly and in a flexible manner and calculate fuel consumption easily. It can be integrated with other programs which allow for smooth integration with the functionality of MATLAB.
6 . Battery management system
- Overview
- Basics of batteries
- Battery Parameters
- Lithium-Ion Characteristics
- Thermal Runaway
- Battery & SOC Estimation
- CAN Protocol
- SOC Modelling Using MATLAB
- Cell modelling in MATLAB
- BMS modelling using MATLAB
- Live Sessions
This project involves battery pack modeling, SOC estimation using CCM, battery protection implementation for safety, and passive cell balancing for enhanced battery performance. These objectives collectively optimize battery management.
7 . Battery Pack Design & Modelling
- Overview of Battery Parameters & Cell Chemistry
- Revisiting BMS for battery pack
- Electrical Design
- Mechanical Design
- Thermal Considerations
- Thermal Design of Battery & Testing Part 2
- Battery Pack Calculations
- Battery Pack Modelling Using MATLAB
- Live Sessions
The main goal of this project is to perform a thorough analysis of Lithium-ion batteries, ensuring they conform to datasheet specifications. This involves carefully selecting key battery parameters for precise modeling. We will then conduct simulations to extensively study state of charge (SOC), voltage, and current, providing valuable insights into the results. Additionally, the project will investigate the impact of changing the battery configuration to 4S3P, using simulations to elucidate the effects of this configuration shift.
8 . Advanced Powertrain
- Introduction to EV Powertrain
- Overview, Architecture and components of EV powertrain
- Thermal Management of EV Powertrain
- EV Charging Systems and Types of Chargers
- Modeling and Simulation of EV Powertrain Components in MATLAB
- Modeling and Analysis of EV Powertrain Components in SolidWorks
- Powertrain Certification
- Powertrain Primary Components
- LCC
- Introduction to Ansys
- Modelling & Analysis of EV Powertrain Components in Ansys
- Introduction to SolidWorks
This project has a dual focus. First, it aims to create a comprehensive MATLAB model for an electric car, encompassing the battery system and DC motor, facilitating in-depth system analysis. Second, it involves a detailed examination of the battery's State of Charge (SOC) dynamics and a precise comparison between the intended reference velocity and the actual vehicle performance. These efforts aim to provide valuable insights into the electric car's operational efficiency and performance relative to expectations.
9 . Design of EV Using MATLAB®
- Power Required to overcome Resistance Forces acting on the vehicle
- Power Converters in Electric Vehicles
- Inverters in Electric Vehicles
- Motor & Motor Controllers
- Simscape Lead Acid Physical Modelling & EV Design
- Simscape Hybrid EV Performance Evaluation and ADVISOR
- Revisiting EV Battery systems
10 . MATLAB® Based EV Architecture Modelling (Project Based)
- Assignment 1 - Buck Converter Design
- Assignment 2 - Boost Converter Design & Analysis
- Assignment 3 - Buck Boost converter design and analysis
- Assignment 4 - 3 Phase & multi level Inverter Design and Modelling
- Assignment 5 - Solar PV Based Charger
- Assignment 6 - Induction motor
- Assignment 7 - Motor Controller Design
- Introduction to EV Hardware Architecture: Practical Demo
- Motor, Controller, and Interfacing with the Hardware: Practical Demo
- Battery Selection and Connection Process with Vehicle Sensors: Practical Demo
- Vehicle Auxiliary Connection with Converter System: Practical Demo
- Integration of Hardware and Software: Practical Demo
Implementing DC machine torque speed characteristics equations in the MATLAB script file and studying the theoretical concepts of DC motors and their classifications.
The purpose of this project is to: Discuss the equivalent circuit network of the induction motor MATLAB model. 3 phase, 50 Hz induction motor, represented by equivalent circuit constants X1 = X2 = 0.1 ohms and R1 = R2 = 0.2 ohms is operated at half of the rated voltage and frequency. Calculate the ratio of starting torque at half voltage & frequency to rated values.
Develop a Simulink model to display the Vehicle Speed and distance covered by EV.
Design a 5-level cascaded H-Bridge inverter using SIMULINK. The PWM modulation technique is used to generate switching pulses for the 5-Level inverter. An inverter converts the DC voltage to an AC voltage. In most cases, the input DC voltage is usually lower while the output AC is equal to the grid supply voltage of either 120 volts, or 240 Volts depending on the application.
Photovoltaic power control using MPPT and boost converter Combined model of solar PV-based charge .
To design a Buck converter, Boost converter, and Buck-boost converter. A DC-to-DC converter is an electronic circuit or electromechanical device that converts a source of direct current (DC) from one voltage level to another. It is a type of electric power converter. Power levels range from very low (small batteries) to very high (high-voltage power transmission).
Study on fundamentals of BLDC motor. Role of DC converter in BLDC motor controller.Inverter switching and control logic. Commutation Logic and Controller operation.
The objective of this project is to equip the students with the skills and knowledge to develop a comprehensive thermal model for lithium-ion batteries using MATLAB.
11 . Embedded systems
Skills you will learn
Top corporate faculty
Course fees
starting at just ₹6,250 per month

FAQs
Of the 8 total projects, all of them are mandatory. Projects are part of the learning process where concepts are explained using these projects. You are required to do it alongside the instructor in the course lesson study. The mandatory projects carry 50 or 100 marks each and it would add to your overall Placement Guarantee course score. You are required to submit all mandatory projects to graduate from the Placement Guarantee course.
The mid term viva will take place in the middle of your learning journey i.e. after course 5 and the final viva will take place after you have completed all 11 courses in the Placement Guarantee course and submitted all the mandatory projects. In the viva, you will be asked questions based on concepts taught in the Placement Guarantee course and the projects you build.
Course | Final Test Marks | Project Marks | Assignment Marks | Viva |
---|---|---|---|---|
EV Business | 100 | 30 | ||
EV Fundamental Certification | 100 | 30 | ||
EV Advanced Certification | 100 | No project | ||
Analog & Digital Electronics | 100 | 50 | ||
MATLAB ® Certification Course | 100 | 50 | Mid term-300 | |
Battery Management System | 100 | 100 | ||
Battery Pack Design & Modelling | 100 | 100 | ||
Advanced Powertrain | 100 | 100 | ||
Design of EV Using MATLAB | 100 | No project | ||
MATLAB Based EV Architecture Modelling | 100 | 100 | Assignment 1 - 30 Assignment 2 - 30 Assignment 3 - 30 Assignment 4 - 50 Assignment 5 - 50 Assignment 6 - 50 Assignment 7 - 100 | |
Embedded Systems | 100 | No project | Final viva-700 | |
Total course marks | 1100 (A) | 560 (B) | 340 (C) | 1000 (D) |
Aggregate marks (A+B+C+D) | 3000 | |||
Minimum marks to graduate | 2250 |
- 50% marks in each final test to move on to the next course
- Submission of all the assignments and projects
- Attending the viva and career planning session
- Scoring a minimum of 50% as a combined total of both the viva sessions
- Completing the program within the original duration
- A final aggregate score of 75% marks
- Be eligible and authorized to work in India during the job guarantee period.
- Meet the required passing criteria to graduate from the Placement Guarantee course.
- Graduate from the Placement Guarantee course with-in the originally stipulated duration without requiring any extension.
- Make all the fee payment on a timely basis without any delay.
- Participate in ALL placement related activities & drives organized by Internshala.
- Make sincere and reasonable efforts to apply for various internships and jobs offered on Internshala and/or on other platforms and attend ALL interviews & selection processes arranged/offered by Internshala.
- Ensure that the mandate of submitting at least 10 relevant applications per week on the Internshala portal is met.
- Not decline or withdraw applications from any full-time employment or internship with a pre-placement offer that they get during the internship guarantee period without Internshala's approval.
- Pass the background checks conducted by a company before starting the opportunity
- Neither leave the full-time employment or internship with a pre-placement offer mid-way nor be terminated from it due to lack of performance or misconduct.
- Not indulge in any non-disciplinary behavior or action during the training period (including plagiarism)
- Ensure you respond to ALL employers when they express interest in your profile.
- Not fail to meet any other condition as may be decided and communicated to them by Internshala from time to time.
These are mandatory sessions and in case the user isn't attending any session, they will be debarred from the guaranteed job program. The user will still be able to access the learning content.