Multiple advanced battery systems for electric vehicles

Author(s):  
D. Coates ◽  
C. Fox
Author(s):  
Jing Wang ◽  
Xingkang Huang ◽  
Junhong Chen

Solid-state lithium batteries (SSLBs) are promising candidates for replacing traditional liquid-based Li-ion batteries and revolutionizing battery systems for electric vehicles and portable devices. However, longstanding issues such as form factors,...


Author(s):  
Huazhen Fang ◽  
Yebin Wang

This paper studies control-theory-enabled charging management for battery systems in electric vehicles (EVs). Charging is a crucial factor for the battery performance and life as well as EV users’ anxiety. Existing methods run with two shortcomings: insufficiency of battery health awareness during charging, and failure to include the user into the charging loop. To address such issues, we propose to perform charging that deals with both health protection and user-specified charging needs or objectives. Capitalizing on the linear quadratic control theory, a set of charging strategies are developed. A simulation-based study demonstrates their effectiveness and potential. We expect that charging with health awareness and user involvement will improve not only the battery longevity but also user satisfaction.


2015 ◽  
Vol 10 (5) ◽  
pp. 14-19
Author(s):  
Rüdiger Heim ◽  
Alexander Dautfest ◽  
David Flaschenträger ◽  
Chalid El Dsoki

Energies ◽  
2017 ◽  
Vol 10 (7) ◽  
pp. 919 ◽  
Author(s):  
Jichao Hong ◽  
Zhenpo Wang ◽  
Peng Liu

Energies ◽  
2021 ◽  
Vol 14 (18) ◽  
pp. 5989
Author(s):  
Lidiya Komsiyska ◽  
Tobias Buchberger ◽  
Simon Diehl ◽  
Moritz Ehrensberger ◽  
Christian Hanzl ◽  
...  

This review provides an overview of new strategies to address the current challenges of automotive battery systems: Intelligent Battery Systems. They have the potential to make battery systems more performant and future-proof for coming generations of electric vehicles. The essential features of Intelligent Battery Systems are the accurate and robust determination of cell individual states and the ability to control the current of each cell by reconfiguration. They enable high-level functions like fault diagnostics, multi-objective balancing strategies, multilevel inverters, and hybrid energy storage systems. State of the art and recent advances in these topics are compiled and critically discussed in this article. A comprising, critical discussion of the implementation aspects of Intelligent Battery Systems complements the review. We touch on sensing, battery topologies and management, switching elements, communication architecture, and impact on the single-cell. This review contributes to transferring the best technologies from research to product development.


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