Advanced Certification Course in EV Design & Simulation using MATLAB
“The Advanced Certification Course in EV Design & Simulations using MATLAB” is designed to provide an in-depth understanding of electric vehicle (EV) system architecture, focusing on the design and modeling of key components such as converters, inverters, motor controllers, and battery management systems (BMS). This course leverages advanced simulation tools like MATLAB, Simulink, Simscape, QSS, and ADVISOR Toolboxes to enable participants to model, analyze, and optimize EV systems. With hands-on projects and practical applications, participants will gain valuable skills for a career in EV design and development.
At a glance
- 7 Modules.
- 40 Lectures.
- 13.591 hours of Video Content.
- 7 Quizzes with Solutions.
- 1 Project Assignment.
- Certification of Completion.
-
LevelExpert
-
Duration13 hours 35 minutes
-
Enrollment validityEnrollment validity: Lifetime
-
CertificateCertificate of completion
Course Curriculum
Welcome to the Course!
-
Sign up at eMobility.careers to get exclusive EV job Opportunities!
Module 1A: Road Load Understanding
Participants will learn the fundamentals of road load analysis, which is critical for understanding how external forces such as aerodynamic drag and rolling resistance affect vehicle performance. The module covers road load calculations, the basics of drive cycles, and introduces MATLAB and Simulink for road load simulation.
-
Topic 1: Introduction to Road Load Analysis
09:42 -
Topic 2: Road Load Calculations
14:08 -
Topic 3: Road Load Calculations in Excel
08:53 -
Topic 4: Introduction to Drive Cycle
04:14 -
Topic 5: Introduction to MATLAB Road Loads Calculations
12:36 -
Topic 6: Introduction to Simulink Road Loads Calculations
10:02 -
Module 1A Quiz – Please tick only One Option as the Correct Answer.
-
Module 1A Quiz Solutions
Module 1B: Road Load Analysis
Building on the previous module, this section goes deeper into road load calculations and analysis. Topics include the preparation of drive cycle road loads, aerodynamic drag force calculations, power and torque requirements for EVs, and the conclusion of all road loads for real-world performance analysis.
-
Topic 1: Preparation of Drive Cycle Road Loads Calculations
10:38 -
Topic 2: Aerodynamic Drag Force Road Loads Calculations
10:21 -
Topic 3: All Road Loads Force and Power Requirements
15:01 -
Topic 4: Torque Requirement and Conclusion
23:45 -
Module 1B Quiz: Please tick only One Option as the Correct Answer.
-
Module 1B Quiz Solutions
Module 2A: Inverter Design and Modeling
This module covers the fundamentals of inverters, which are essential for controlling electric motors in EVs. Participants will model and simulate single-phase and three-phase inverters, learning how to optimize their performance for EV applications.
-
Topic 1: Introduction to Inverters
16:04 -
Topic 2: Single Phase Inverter – Half Bridge & Full Bridge DC AC Inverter
28:04 -
Topic 3: Three Phase Inverter
27:47 -
Topic 4: Inverter Simulation and Modeling
27:04 -
Module 2A Quiz: Please tick only One Option as the Correct Answer.
-
Module 2A Quiz Solutions
Module 2B: Modeling Power Converters & Vehicle Configuration Using MATLAB-SIMULINK
-
Topic 1: Modeling Multi Level Inverter using MATLAB-SIMULINK
22:42 -
Topic 2: Modeling Buck Converter using MATLAB-SIMULINK
11:56 -
Topic 3: Modeling Boost Converter using MATLAB-SIMULINK
09:32 -
Topic 4: Modeling Buck Boost Converter using MATLAB-SIMULINK
09:49 -
Topic 5: Modeling Vehicle Configuration using MATLAB-SIMULINK
20:07
Module 3: Advanced Simscape Modeling
In this module, participants will explore the Simscape Toolbox for advanced modeling. Topics include modeling vehicle road loads, AC/DC conversion, ultracapacitors, battery systems, and PWM-controlled DC motors. The module also covers fault analysis in battery packs, enabling learners to simulate real-world scenarios.
-
Topic 1: Introduction to Simscape
09:12 -
Topic 2: Modeling Vehicle Road Loads using Simscape Toolbox
30:30 -
Topic 3: Modeling Battery using Simscape Toolbox
44:20 -
Topic 4: Modeling Ultracapacitor using Simscape Toolbox
12:15 -
Topic 5: Modeling AC/DC Full Wave/Half Wave Rectifier using Simscape
24:11 -
Topic 6: Modeling DC Motor & Its Controller Unit Using Simscape
29:31 -
Topic 7: Modeling PWM Controlled DC Motor
14:46 -
Topic 8: Modeling Battery Pack with Fault Using Simscape
24:12 -
Topic 9: Modeling Lead Acid Battery Cell Using Simscape
13:08 -
Topic 10: Physical Modeling of ICE Vehicle Using Simscape
06:52 -
Module 3 Quiz: Please tick only One Option as Correct Answer.
-
Module 3 Quiz Solution
Module 4: QSS and ADVISOR Toolbox Applications
This module focuses on using the QSS Toolbox for EV design and ADVISOR Toolbox for vehicle performance analysis. Participants will model internal combustion engine (ICE) vehicles, lead-acid battery cells, and hybrid electric vehicles (HEVs) to gain a comprehensive understanding of different vehicle architectures and their performance metrics.
-
Topic 1: Introduction to QSS Toolbox & EV Modeling with QSS
26:37 -
Topic 2: Modeling Hybrid Electric Vehicle (HEV) with QSS Toolbox
28:27 -
Topic 3: Introduction to Advisor Toolbox and Vehicle Performance Analysis using ADVISOR Toolbox
18:19 -
Topic 4: Vehicle Performance Analysis using ADVISOR Toolbox Contd.
39:53 -
Module 4 Quiz-1: Please tick Only One Option as Correct Answer.
-
Module 4 Quiz-1 Solutions
-
Module 4 Quiz-2: Please tick Only One Option as Correct Answer
-
Module 4 Quiz-2 Solutions
Module 5: BMS Modeling and Energy Analysis
In this module, participants will learn how to model and simulate a battery management system (BMS), with a focus on battery protection, thermal anomaly analysis, and energy consumption. The module also includes a demonstration on creating drive cycles from data, allowing participants to evaluate EV energy efficiency and performance in various driving conditions.
-
Topic 1: Batteries
19:30 -
Topic 2: Energy Consumption in Electric Vehicles
22:24 -
Topic 3: Demonstration of How to Make a Drive Cycle from Data
18:43 -
Topic 4: Battery Managment System in detail
48:53 -
Topic 5: Modeling Battery in Simulink for Thermal Anomaly Behavior Analysis
35:07 -
Topic 6: BMS for Battery Pack Electrical Management & Protection – Current and Voltage
22:05 -
Topic 7: BMS for Battery Pack Capacity Management – Cell Balancing
34:19 -
Module Quiz 5: Please tick Only One Option as Correct Answer.
-
Module 5 Quiz Solutions
DIY Projects:
-
Project 1: Comprehensive Electric Vehicle (EV) Design and Performance Analysis Using MATLAB
-
Congratulations on Successfully Completing the Course!
Earn a certificate
Add this certificate to your resume to demonstrate your skills & increase your chances of getting noticed.
Student Ratings & Reviews
Hardware & Software Required
Associated Skills
DIY Projects Included
Course Benefits
Technical expertise you will gain
Who can take this course?
Personalized Trainer Support Portal:
At a glance
- 7 Modules.
- 40 Lectures.
- 13.591 hours of Video Content.
- 7 Quizzes with Solutions.
- 1 Project Assignment.
- Certification of Completion.
-
LevelExpert
-
Duration13 hours 35 minutes
-
Enrollment validityEnrollment validity: Lifetime
-
CertificateCertificate of completion
Similar Courses
EV Engineering Mastercourse Part I: EV Fundamentals & Core Components
- 2 hours 49 minutes
- Intermediate
Certification Course in EV Battery Pack Design & BMS Protection Modeling
- 9 hours 35 minutes
- Intermediate
Certification Course in Advanced Driver Assistance Systems (ADAS) for EVs
- 25 hours
- Expert
Over 1.2 Million+ EV learners impacted worldwide
Learners from 170+ countries have grown in their career through our programs