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Electric Vehicle Design
Design, Simulation, and Applications
Krishan Arora (Edited by), Arora (Author), Suman Lata Tripathi (Edited by), Himanshu Sharma (Edited by)
9781394204373, Wiley
Hardback, published 29 April 2024
368 pages
22.9 x 15.2 x 2.3 cm, 0.85 kg
ELECTRIC VEHICLE DESIGN This book will serve as a definitive guide to conceptual and practical knowledge about the design of hybrid electrical vehicles (HEV), battery electrical vehicles (BEV), fuel cell electrical vehicles (FCEV), plug-in hybrid electrical vehicles (PHEV), and efficient EV charging techniques with advanced tools and methodologies for students, engineers, and academics alike. This book deals with novel concepts related to fundamentals, design, and applications of conventional automobiles with internal combustion engines (ICEs), electric vehicles (EVs), hybrid electric vehicles (HEVs), and fuel cell vehicles (FCVs). It broadly covers vehicle performance, configuration, control strategy, design methodology, modeling, and simulation for different conventional and hybrid vehicles based on mathematical equations. Fundamental and practical examples of conventional electrical machines, advanced electrical machines, battery energy sources, on-board charging and off-board charging techniques, and optimization methods are presented here. This book can be useful for students, researchers, and practitioners interested in different problems and challenges associated with electric vehicles. Furthermore, in explaining the design methodology of each drive train, design examples are presented with simulation results.
Preface xv 1 Development of Braking Systems in Fuel Cell Electric Vehicles 1 1.1 Introduction 1 1.2 Historical Background of Fuel Cell 2 1.3 ADVISOR 3 1.4 Why Hydrogen is Preferred 4 1.5 What is a Fuel Cell? 4 1.6 Working of Fuel Cells 4 1.7 Types of Fuel Cells 5 1.8 Block Diagram of Vehicle on MATLAB/Simulink 8 1.9 Braking System in Vehicle 8 1.10 Regenerative Braking System 9 1.11 Anti-Lock Braking System (ABS) 10 1.12 Conclusion 15 2 Design and Applications of Fuel Cells 19 2.1 Introduction 20 2.2 Types of Electric Vehicles 21 2.3 Design Equations of Fuel Cells 25 2.4 Designing of Fuel Cells 29 2.5 Types of Fuel Cells 30 2.6 Solid Oxide FCs (SOFCs) 31 2.7 Alkaline Fuel Cells (AFCs) 35 2.8 Molten Carbonate Fuel Cell (MCFC) 39 2.9 Phosphoric Acid Fuel Cells (PAFCs) 43 2.10 Polymer Electrolyte Membrane Fuel Cell (PEMFC) 46 2.11 Direct Methanol Fuel Cells (DMFCs) 50 2.12 Parameters Affecting the Performance of FCs 54 3 Smart Energy Management and Monitoring System for Electric Vehicles with IoT Integration 57 3.1 Introduction 58 3.2 The Control of Electric Vehicles Using IoT 59 3.3 IoT Management Issues with Electric Vehicles 61 3.4 Monitoring and Management Benefits of IoT 62 3.5 Predictive Maintenance System with Fault Alerts 64 3.6 IoT Management and Monitoring Issues with Electric Vehicles 65 3.7 Microcontroller 68 3.8 IoT-Based Systems for Battery Management and Monitoring 71 3.9 Design of Battery Charge Control and Monitoring System 71 3.10 Results and Discussion 73 3.11 Conclusions 74 3.12 Future Scope of IoT in Electric Vehicles 75 4 A Review of Electric Vehicles: Technologies and Challenges 81 4.1 Introduction 82 4.2 Electric Motors 82 4.3 Power Electronic Converters 87 4.4 Battery in Electric Vehicles 92 4.5 Conclusion 97 5 Electric Vehicle and Design Using MATLAB 101 5.1 Introduction 102 5.2 Motivation 103 5.3 Basic Fundamentals of EVs 104 5.4 Why Electric Vehicles? 106 5.5 Comparison Between ICV and EV 106 5.6 Classification of EVs 107 5.7 Design and Structure of EV 108 5.8 Mathematical Model of an Electric Vehicle 115 5.9 Control Strategy of EVs 116 5.10 Design Methodology for Electric Vehicles (EVs) 117 5.11 Latest Emerging Technology in EV 118 5.12 Performance Valuation of BLDC Motor and Induction Motor for Electric Vehicle Propulsion Application 119 5.13 Conclusion 125 6 Model Order Reduction of Battery for Smart Battery Management System 129 6.1 Introduction 129 6.2 Problem Formulation 131 6.3 Modeling of Battery 132 6.4 Methodology for Model Order Reduction 134 6.5 Result and Discussion 137 6.6 Conclusion 141 7 Power Electronic Converters for Electric Vehicle Application 147 7.1 Introduction 148 7.2 Types of Electrical Vehicle and Role of Power Electronic Converter 151 7.3 Recent Development in Power Electronic Converter 158 7.4 Power Electronic Converters in Electric, Hybrid, and Fuel Cell Vehicles 161 7.5 Challenges in Power Electronic Vehicular System 162 7.6 Conclusion 164 8 Integrating Electric Vehicles Into Smart Grids Through Data Analytics: Challenges and Opportunities 167 8.1 Introduction 168 8.2 Smart Grid and Electric Vehicle 169 8.3 Impact of Electric Vehicle--Based Data Analytics for Smart Grids 169 8.4 Importance of Resource Availability, Price, and Load for EV 171 8.5 Electric-Tariff Design Based on Impact of Electric Vehicle Usage 173 8.6 Data Analytics for Electric Vehicles 174 8.7 Machine Learning for EV Analytics 176 8.8 What are the Different ML Algorithms Used by Authors for EV Analytics? 177 8.9 Importance of Data Analysis in the EV Industry Using an Open Source Data 178 8.10 Description of the Dataset 179 8.11 Features and Factors That Influence the Prices of EVs 179 8.12 Price Prediction of EVs 180 8.13 Random Forest--Based Price Prediction of Electric Vehicles 185 8.14 Machine Learning Model 187 8.15 Electric Vehicle Usage in India 189 8.16 The Challenges of Adopting EV in India 190 8.17 How to Increase Renewable Energy in India to Meet EV Demand 191 9 Hybrid Electrical Vehicle Designs 197 9.1 Introduction 197 9.2 Plug-In Hybrid Electric Vehicles 198 9.3 Classification of HEVs 199 9.4 Fuel Cell Electric Vehicles (FCEVs) 201 9.5 Hybrid Electric Vehicle System Design and Analysis 203 9.6 Control Strategy in Series Hybrid Drivetrain Configuration 204 9.7 Design of Fuel Cell Electric Vehicles with Fuel Economy 209 9.8 Conclusion 213 10 EV Battery Charging System 215 10.1 Introduction 216 10.2 Electric Vehicle Charging Infrastructure 217 10.3 Power Electronics Converters Used for Charging System 219 10.4 Control Strategies of EV Charging System 221 10.5 Various Modes of Charging System 226 10.6 Real-Time Challenges of EV Charging Infrastructure 227 11 Optimization Algorithms and Computing Techniques for Electric Vehicles: Advancements in Computing and Algorithms 235 11.1 Introduction 236 11.2 Fundamental Optimization Techniques 238 11.3 Problem Formulation of Optimal Solution 238 11.4 Optimization Techniques 241 11.5 Electric Vehicle 244 11.6 Challenges in EV Implementation 250 11.7 Optimization Techniques for Electric Vehicles 252 11.8 Conclusion 261 12 Economic Load Dispatch Solutions at Small, Medium, and Large Scales Utilizing Chaotic Spotted Hyena Optimization 265 12.1 Introduction 266 12.2 Unit Commitment and Economic Dispatch Process 267 12.3 Optimization in Power System 268 12.4 Hybrid Optimization Algorithm 273 12.5 Chaotic Spotted Hyena Optimization Technique 274 12.6 Economic Load Dispatch Problem 276 12.7 Power Balance Equality Constraints 277 12.8 Generator Power Limit Inequality Constraints 278 12.9 Test Systems Results and Discussion 278 12.10 Conclusion 288 13 Simulation of Automatic Search of Charging Station for Electric Bikes 295 13.1 Introduction 296 13.2 Related Works 298 13.3 Methodology 299 13.4 Load Balancing of Smart Grid 303 13.5 Electric Bike Supply Equipment (EBSE) Algorithm 304 13.6 Simulation 305 13.7 Performance Metrics 307 13.8 Method and Existing Method 308 14 Self-Charging Electrical Vehicle Design and Analysis with MATLAB 313 14.1 Introduction 313 14.2 Natural Energy Sources for Self-Charging Electrical Vehicles 314 14.2.1 Wind Energy 315 14.3 Arduino-Based Control Systems in Electric Vehicles 323 14.4 MATLAB-Based Simulation and Modeling for Self-Charging Electric Vehicles 325 14.5 Electric Motor Model 327 14.6 Results for Vehicle Performance 329 14.7 Power Electronics Model 330 14.8 Energy Management System 330 14.9 Conclusion 333 References 333 Index 335
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Subject Areas: Mechanical engineering & materials [TG]
