
EV Design Course
Master every subsystem that makes a modern electric vehicle work — from battery chemistry and power electronics to thermal management and vehicle software. This course gives engineers and technical professionals the tools to design, integrate, and validate complete EV platforms. Build the expertise the industry is actively hiring for right now.
What you will learn:
You will gain a thorough understanding of EV powertrain architecture, battery systems, electric motors, and power electronics. The course covers thermal management design, charging infrastructure, and vehicle control software. You will also study drivetrain integration, NVH, and braking systems. Supplementary modules address lightweight structures, ADAS integration, manufacturing, sustainability, and business strategy. By the end, you will be equipped to contribute to full-cycle EV development programmes across passenger, commercial, and performance vehicle segments.
How you study in practice EV Design Course
How you practise EV Design Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 41 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Electric Vehicle Technology
Foundations of Electric Vehicle Technology
Lesson 1 • Core EV Subsystem Overview
Maps the primary subsystems: powertrain, energy storage, thermal, and controls. Establishes vocabulary used throughout the course.
Lesson 2 • EV Classification and Architectures
Distinguishes BEV, HEV, PHEV, and FCEV configurations. Helps students select appropriate architecture for a given application.
Lesson 3 • Electric Power Fundamentals
Covers DC and AC electrical concepts essential for EV design. Connects circuit theory to real vehicle power flows.
Lesson 4 • History and Evolution of EVs
Traces EV development from early prototypes to modern platforms. Provides context for understanding why current design choices exist.
Lesson 5 • Regulatory and Safety Framework
Introduces functional safety standards and homologation requirements relevant to EV design. Grounds technical decisions in compliance context.
Chapter 2HideHide detailsSee detailsBattery Systems and Energy Storage
Battery Systems and Energy Storage
Lesson 1 • Pack Thermal Management
Addresses cooling and heating strategies to maintain cells within optimal temperature ranges. Directly supports battery longevity and fast-charge capability.
Lesson 2 • Lithium-Ion Cell Chemistries
Compares NMC, LFP, NCA, and solid-state chemistries on energy density, safety, and cycle life. Guides chemistry selection for specific EV use cases.
Lesson 3 • Battery Management Systems
Details BMS functions: cell balancing, state estimation, fault detection, and communication. Shows how BMS protects and optimises pack performance.
Lesson 4 • Cell, Module, and Pack Design
Covers cylindrical, prismatic, and pouch cell formats and their assembly into modules and packs. Connects cell format to structural and thermal design constraints.
Lesson 5 • Electrochemical Principles of Batteries
Explains oxidation-reduction reactions, electrode chemistry, and electrolyte behaviour. Links chemistry to measurable electrical performance.
Lesson 6 • Battery Lifetime and Degradation
Analyses capacity fade mechanisms, cycle ageing, and calendar ageing. Enables designers to specify packs that meet warranty and end-of-life targets.
Chapter 3HideHide detailsSee detailsElectric Motors and Power Electronics
Electric Motors and Power Electronics
Lesson 1 • Motor Control Strategies
Covers field-oriented control and direct torque control algorithms. Shows how control strategy affects responsiveness, efficiency, and NVH.
Lesson 2 • DC-DC Converters and On-Board Chargers
Details bidirectional DC-DC converters and on-board charger topologies. Links auxiliary power supply design to overall vehicle energy efficiency.
Lesson 3 • Motor Types for EV Applications
Compares PMSM, induction, switched reluctance, and axial-flux motors on performance and cost. Guides motor selection for passenger, commercial, and performance EVs.
Lesson 4 • Inverter Design and Operation
Explains three-phase inverter topology, switching devices, and modulation strategies. Connects inverter design to motor control quality and efficiency.
Lesson 5 • Electric Motor Fundamentals
Reviews electromagnetic principles underlying motor operation. Establishes torque, speed, and power relationships used in drivetrain sizing.
Chapter 4HideHide detailsSee detailsEV Drivetrain and Chassis Integration
EV Drivetrain and Chassis Integration
Lesson 1 • Braking System Integration
Addresses blended braking systems that combine regenerative and friction braking. Ensures students can design systems meeting safety and energy recovery targets.
Lesson 2 • Gearbox and Reduction Gear Design
Covers single-speed reducers, multi-speed gearboxes, and differential design for EVs. Explains how gear ratio selection affects acceleration and top speed.
Lesson 3 • Drivetrain Layout Options
Compares single-motor, dual-motor, and in-wheel motor configurations. Connects layout choice to traction, packaging, and cost outcomes.
Lesson 4 • Vehicle Dynamics and Handling
Applies mass distribution, centre of gravity, and suspension geometry to EV-specific layouts. Enables students to predict and improve handling balance.
Lesson 5 • NVH Considerations in EV Design
Identifies noise and vibration sources unique to EVs and mitigation strategies. Connects NVH performance to customer satisfaction and component durability.
Chapter 5HideHide detailsSee detailsThermal Management System Design
Thermal Management System Design
Lesson 1 • Heat Transfer Principles for EVs
Reviews conduction, convection, and radiation as applied to EV components. Provides the analytical tools used in all subsequent thermal design sections.
Lesson 2 • Motor and Inverter Cooling
Covers water jacket, oil spray, and heat sink cooling for motors and inverters. Ensures students can maintain components within safe operating temperatures.
Lesson 3 • Cabin HVAC and Heat Pump Systems
Integrates cabin heating and cooling with the vehicle thermal loop using heat pump technology. Minimises range penalty from climate control loads.
Lesson 4 • Battery Thermal System Design
Designs liquid and refrigerant-based cooling circuits for battery packs. Directly supports battery longevity and fast-charge performance goals.
Lesson 5 • Integrated Thermal Management Architecture
Combines battery, motor, and cabin loops into a unified thermal system with shared components. Reduces mass, cost, and complexity versus separate subsystem designs.
Chapter 6HideHide detailsSee detailsCharging Systems and Infrastructure
Charging Systems and Infrastructure
Lesson 1 • Charging Standards and Levels
Defines Level 1, Level 2, and DC fast charging levels and their connector standards. Provides the framework for all subsequent charging system design decisions.
Lesson 2 • DC Fast Charging Architecture
Covers off-board charger topologies, power delivery protocols, and battery interface requirements. Enables design of systems supporting high-power charging.
Lesson 3 • Charging Infrastructure Planning
Addresses site assessment, load management, and network communication for charge points. Connects vehicle design requirements to real-world deployment constraints.
Lesson 4 • Vehicle-to-Grid and Bidirectional Charging
Explains V2G, V2H, and V2L capabilities and their power electronics requirements. Positions EVs as grid assets and expands the designer's value proposition.
Lesson 5 • On-Board Charging System Design
Details the power conversion stages inside the vehicle for AC charging. Links on-board charger design to charge time, efficiency, and thermal load.
Chapter 7HideHide detailsSee detailsVehicle Software and Control Architecture
Vehicle Software and Control Architecture
Lesson 1 • In-Vehicle Network Protocols
Covers CAN, LIN, Ethernet, and FlexRay protocols and their EV-specific applications. Enables students to design reliable, low-latency communication networks.
Lesson 2 • Functional Safety in EV Software
Applies functional safety principles to software development for safety-critical EV functions. Ensures students can design systems that meet required integrity levels.
Lesson 3 • Electronic Control Unit Architecture
Maps ECU types, their responsibilities, and physical placement in the vehicle. Establishes the hardware foundation for all software and control discussions.
Lesson 4 • Energy Management Strategy
Develops rule-based and optimisation-based energy management algorithms. Directly impacts range, battery life, and driver experience.
Lesson 5 • Over-the-Air Updates and Cybersecurity
Designs OTA update pipelines and cybersecurity defences for connected EVs. Protects vehicle integrity and enables post-sale feature delivery.
Chapter 8HideHide detailsSee detailsEV System Integration and Validation
EV System Integration and Validation
Lesson 1 • Homologation and Type Approval
Navigates the regulatory submission process for EV type approval in target markets. Ensures students can plan and execute compliance programmes efficiently.
Lesson 2 • Performance and Durability Testing
Executes range, acceleration, thermal, and durability test protocols on complete vehicles. Verifies that design targets are met under real-world conditions.
Lesson 3 • Systems Engineering for EVs
Applies requirements decomposition, interface management, and V-model development to EV programmes. Provides the process framework for all integration activities.
Lesson 4 • Hardware-in-the-Loop Testing
Uses HIL simulation to validate ECU software against virtual plant models before physical integration. Reduces integration risk and accelerates development cycles.
Lesson 5 • Prototype Build and Integration
Manages mule, alpha, and beta prototype builds to progressively validate design intent. Connects simulation results to physical hardware performance.
Your valid completion certificate
This course is for you:
Mechanical engineer: ready to expand into EV-specific electrical and systems work.
Electrical engineer: looking to apply power electronics knowledge to vehicle platforms.
Automotive engineer: transitioning from combustion vehicle programs to EV development.
Energy or aerospace professional: bringing transferable skills into the mobility sector.
Engineering student or recent graduate: building specialized EV credentials before entering industry.
Career changer: moving from a technical field into the fast-growing EV industry.
What our students say
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