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El. knyga: Modeling, Dynamics, and Control of Electrified Vehicles

Edited by (Professor, School of Electrical, Computer and Telecommunications Engineering, Faculty of Engineering and Information Sciences, University of Wollongong, Australia), Edited by (Associate Professor, University of Waterloo, Canada), Edited by (Beihang Univer)
  • Formatas: PDF+DRM
  • Išleidimo metai: 19-Oct-2017
  • Leidėjas: Woodhead Publishing
  • Kalba: eng
  • ISBN-13: 9780128131091
  • Formatas: PDF+DRM
  • Išleidimo metai: 19-Oct-2017
  • Leidėjas: Woodhead Publishing
  • Kalba: eng
  • ISBN-13: 9780128131091

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Modelling, Dynamics and Control of Electrified Vehicles provides a systematic overview of EV-related key components, including batteries, electric motors, ultracapacitors and system-level approaches, such as energy management systems, multi-source energy optimization, transmission design and control, braking system control and vehicle dynamics control. In addition, the book covers selected advanced topics, including Smart Grid and connected vehicles. This book shows how EV work, how to design them, how to save energy with them, and how to maintain their safety.

The book aims to be an all-in-one reference for readers who are interested in EVs, or those trying to understand its state-of-the-art technologies and future trends.

  • Offers a comprehensive knowledge of the multidisciplinary research related to EVs and a system-level understanding of technologies
  • Provides the state-of-the-art technologies and future trends
  • Covers the fundamentals of EVs and their methodologies
  • Written by successful researchers that show the deep understanding of EVs

Daugiau informacijos

Presents comprehensive knowledge of the multidisciplinary research related to EVs and a system-level understanding of technologies
List of Contributors
ix
1 Modeling, Evaluation, and State Estimation for Batteries
1(38)
Hao Mu
Rui Xiong
1.1 Introduction
1(1)
1.2 Battery Modeling
2(6)
1.3 Evaluation of Model Accuracy
8(17)
1.4 State Estimation
25(9)
1.5 Conclusions
34(5)
References
35(4)
2 High-Power Energy Storage: Ultracapacitors
39(38)
Lei Zhang
2.1 Introduction
39(6)
2.2 Modeling
45(21)
2.3 UC State Estimation
66(3)
2.4 Conclusions
69(8)
Further Reading
70(7)
3 HESS and Its Application in Series Hybrid Electric Vehicles
77(44)
Shuo Zhang
Rui Xiong
3.1 Introduction
77(3)
3.2 Modeling and Application of HESS
80(35)
3.3 Conclusion
115(6)
References
117(4)
4 Transmission Architecture and Topology Design of EVs and HEVs
121(38)
Jibin Hu
Jun Ni
Zengxiong Peng
4.1 Introduction
121(4)
4.2 EV and HEV Architecture Representation
125(4)
4.3 Topology Design of Power-Split HEV
129(14)
4.4 Topology Design of Transmission for Parallel Hybrid EVs
143(14)
4.5 Conclusion
157(2)
Reference
157(2)
5 Energy Management of Hybrid Electric Vehicles
159(48)
Hong Wang
Yanjun Huang
Hongwen He
Chen Lv
Wei Liu
Amir Khajepour
5.1 Introduction
159(2)
5.2 Energy Management of HEVs
161(21)
5.3 Case Study
182(10)
5.4 Model Predictive Control Strategy
192(3)
5.5 Results
195(3)
5.6 Conclusions
198(9)
References
198(9)
6 Structure Optimization and Generalized Dynamics Control of Hybrid Electric Vehicles
207(38)
Liang Li
Sixiong You
Xiangyu Wang
Chao Yang
6.1 Introduction
207(1)
6.2 Generalized Dynamics Models
208(4)
6.3 Extended High-Efficiency Area Model
212(3)
6.4 Typicals Applications
215(26)
6.5 Conclusions
241(4)
References
243(2)
7 Transmission Design and Control of EVs
245(30)
Xiaoyuan Zhu
Fei Meng
7.1 Introduction
245(3)
7.2 EVs Equipped with IMT Powertrain System
248(5)
7.3 Problem Formulation
253(6)
7.4 Oscillation Damping Controller Design
259(6)
7.5 Simulation Results
265(6)
7.6 Conclusion
271(4)
Funding
272(1)
References
272(2)
Further Reading
274(1)
8 Brake-Blending Control of EVs
275(34)
Chen Lv
Hong Wang
Dongpu Cao
8.1 Introduction
275(3)
8.2 Brake-Blending System Modeling
278(5)
8.3 Regenerative Braking Energy-Management Strategy
283(9)
8.4 Dynamic Brake-Blending Control Algorithm
292(14)
8.5 Conclusion
306(3)
References
306(2)
Further Reading
308(1)
9 Dynamics Control for EVs
309(30)
Yafei Wang
Hiroshi Fujimoto
9.1 Introduction
309(6)
9.2 Modeling and Control of EVs
315(6)
9.3 Sensing and Estimation
321(5)
9.4 Active Safety Control
326(6)
9.5 Riding and Energy Efficiency Control
332(4)
9.6 Conclusions
336(3)
References
336(3)
10 Robust Gain-Scheduling Control of Vehicle Lateral Dynamics Through AFS/DYC
339(30)
Hui Zhang
Junmin Wang
10.1 Introduction
339(3)
10.2 Development of Uncertain Vehicle Dynamics Model
342(13)
10.3 Main Results
355(4)
10.4 Simulation Results
359(5)
10.5 Conclusions
364(5)
Acknowledgments
365(1)
References
365(4)
11 State and Parameter Estimation of EVs
369(40)
Brett McAulay
Boyuan Li
Philip Commins
Haiping Du
11.1 Introduction
369(3)
11.2 Velocity Estimation (Longitudinal, and Total, Preferred Method and Alternatives)
372(2)
11.3 Slip-Angle Estimation
374(7)
11.4 Tire-Force and Tire---Road Friction Coefficient Estimation
381(14)
11.5 Vehicle Mass- and Road Slope-Estimation Method
395(10)
11.6 Conclusions
405(4)
References
406(1)
Further Reading
407(2)
12 Modeling and Fault-Tolerant-Control of Four-Wheel-Independent-Drive EVs
409(42)
Rongrong Wang
Junmin Wang
12.1 Introduction
409(2)
12.2 System Modeling and Problem Formulation
411(7)
12.3 Fault-Tolerant Tracking Controller Design
418(19)
12.4 Simulation Investigations
437(11)
12.5 Conclusions
448(3)
References
448(3)
13 Integrated System Design and Energy Management of Plug-In Hybrid Electric Vehicles
451(24)
Xiaosong Hu
13.1 Introduction
451(2)
13.2 Powertrain Modeling
453(2)
13.3 Heuristic Scenarios
455(8)
13.4 Emission Mitigation via Renewable Energy Integration
463(2)
13.5 Optimal Scenario With Integrated System Design and Energy Management
465(3)
13.6 Battery-Health Implication
468(3)
13.7 Conclusions
471(4)
References
473(1)
Appendix
474(1)
14 Integration of EVs With a Smart Grid
475(22)
Xiaosong Hu
14.1 Introduction
475(2)
14.2 Powertrain Modeling
477(6)
14.3 Formulation of Cost-Optimal Control Problem
483(2)
14.4 Results and Discussion
485(9)
14.5 Conclusions
494(3)
References
495(2)
Index 497
Haiping Du has more than 15-year experience on the area of modelling, dynamics and control of electrified vehicles. Dr Du received his PhD degree in mechanical design and theory from Shanghai Jiao Tong University, Shanghai, PR China, in 2002. Previously, Dr Du worked as Research Fellow in University of Technology, Sydney and as Post-Doctoral Research Associate in Imperial College London and the University of Hong Kong, respectively. Dongpu Cao received the Ph.D. degree from Concordia University, Canada, in 2008. He is currently an Associate Professor at University of Waterloo, Canada. His research focuses on vehicle dynamics and control, automated driving and parallel driving, where he has contributed more than 100 publications and 1 US patent. He received the ASME AVTT2010 Best Paper Award and 2012 SAE Arch T. Colwell Merit Award. Dr. Cao serves as an Associate Editor for IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, IEEE/ASME TRANSACTIONS ON MECHATRONICS and ASME JOURNAL OF DYNAMIC SYSTEMS, MEASUREMENT, AND CONTROL. He has been a Guest Editor for VEHICLE SYSTEM DYNAMICS, and IEEE TRANSACTIONS ON HUMAN-MACHINE SYSTEMS. He serves on the SAE International Vehicle Dynamics Standards Committee and a few ASME, SAE, IEEE technical committees. Professor Zhang received his PhD degree in Mechanical Engineering from the University of Victoria, Canada and undertook three years of postdoctoral work at The Ohio State University, USA. He has published more than 70 peer-reviewed journal papers. Moreover, he has successfully organized 5 special issues for Mechanical Systems and Signal

Processing, Journal of The Franklin Institute, International Journal of Vehicle Design, IEEE Access, and Mechatronics.