Comparison of the impact of fast charging on the cycle life of three lithium-ion cells under several parameters of charge protocol and temperatures

被引:66
作者
Mathieu, Romain [1 ]
Briat, Olivier [1 ]
Gyan, Philippe [2 ]
Vinassa, Jean-Michel [1 ]
机构
[1] Univ Bordeaux, CNRS, Bordeaux INP, IMS,UMR 5218, F-33400 Talence, France
[2] Renault, FR TCR LAB 012, Technoctr Guyancourt, 1 Ave Golf, F-78084 Guyancourt, France
关键词
Lithium-ion batteries; Cycle life; Fast charging; Charge protocol; Temperature sensitivity; Energy density; DEGRADATION MODES; BATTERY; PERFORMANCE; DEPOSITION; STATE;
D O I
10.1016/j.apenergy.2020.116344
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Fast charging of lithium-ion batteries is crucial for electric vehicles. As the charge current is a known degradation factor, assessing the impact of fast charging on battery ageing under several operating conditions is necessary to derive usage strategies for system integrators. To bridge existing knowledge gaps, this article reports on a comparative experimental ageing study in fast charging conditions. Three cells, differing in their materials and energy densities, were investigated. The impacts of the following three parameters are compared on these cells: charge current, end-of-charge voltage, and ambient temperature. The results reveal that the impact of fast charging on cycle life strongly depends on battery materials and internal design. The degradation of two of the cells significantly increased when the charge current and voltage increased, whereas that of the third cell was nearly independent of these parameters. While considering thermal conditions, the ageing of each cell was minimised at a different temperature, either cold, moderate, or warm. An analysis of degradation root causes indicates that distinct dominant degradation mechanisms occurred depending on the cell materials. The cells with higher energy density had a lower cycle life (between 100 and 900 cycles) than the most high-power cell (more than 1700 cycles). Experimental results allow the identification of three strategies for reducing charging time while minimising battery degradation. These strategies present several contributions to the design of energy storage systems for electric vehicles, including the choice of a cell, design of thermal management systems, and design of optimised fast charging protocols.
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页数:12
相关论文
共 44 条
[21]   A review of lithium deposition in lithium-ion and lithium metal secondary batteries [J].
Li, Zhe ;
Huang, Jun ;
Liaw, Bor Yann ;
Metzler, Viktor ;
Zhang, Jianbo .
JOURNAL OF POWER SOURCES, 2014, 254 :168-182
[22]  
Lin C, 2020, BATTERY STATE HLTH M, V275
[23]   Understanding the crack formation of graphite particles in cycled commercial lithium-ion batteries by focused ion beam - scanning electron microscopy [J].
Lin, Na ;
Jia, Zhe ;
Wang, Zhihui ;
Zhao, Hui ;
Ai, Guo ;
Song, Xiangyun ;
Bai, Ying ;
Battaglia, Vincent ;
Sun, Chengdong ;
Qiao, Juan ;
Wu, Kai ;
Liu, Gao .
JOURNAL OF POWER SOURCES, 2017, 365 :235-239
[24]   Technoeconomic model of second-life batteries for utility-scale solar considering calendar and cycle aging [J].
Mathews, Ian ;
Xu, Bolun ;
He, Wei ;
Barreto, Vanessa ;
Buonassisi, Tonio ;
Peters, Ian Marius .
APPLIED ENERGY, 2020, 269
[25]   D-optimal design of experiments applied to lithium battery for ageing model calibration [J].
Mathieu, Romain ;
Baghdadi, Issam ;
Briat, Olivier ;
Gyan, Philippe ;
Vinassa, Jean-Michel .
ENERGY, 2017, 141 :2108-2119
[26]   Analysis of degradation in residential battery energy storage systems for rate-based use-cases [J].
Mishra, Partha Pratim ;
Latif, Aadil ;
Emmanuel, Michael ;
Shi, Ying ;
McKenna, Killian ;
Smith, Kandler ;
Nagarajan, Adarsh .
APPLIED ENERGY, 2020, 264
[27]   Lithium-ion batteries: Evaluation study of different charging methodologies based on aging process [J].
Monem, Mohamed Abdel ;
Trad, Khiem ;
Omar, Noshin ;
Hegazy, Omar ;
Mantels, Bart ;
Mulder, Grietus ;
Van den Bossche, Peter ;
Van Mierlo, Joeri .
APPLIED ENERGY, 2015, 152 :143-155
[28]   Fast-charging to a partial state of charge in lithium-ion batteries: A comparative ageing study [J].
Mussa, Abdilbari Shifa ;
Klett, Matilda ;
Behm, Marten ;
Lindbergh, Goran ;
Lindstrom, Rakel Wreland .
JOURNAL OF ENERGY STORAGE, 2017, 13 :325-333
[29]   Li-ion battery materials: present and future [J].
Nitta, Naoki ;
Wu, Feixiang ;
Lee, Jung Tae ;
Yushin, Gleb .
MATERIALS TODAY, 2015, 18 (05) :252-264
[30]   Lithium iron phosphate based battery - Assessment of the aging parameters and development of cycle life model [J].
Omar, Noshin ;
Monem, Mohamed Abdel ;
Firouz, Yousef ;
Salminen, Justin ;
Smekens, Jelle ;
Hegazy, Omar ;
Gaulous, Hamid ;
Mulder, Grietus ;
Van den Bossche, Peter ;
Coosemans, Thierry ;
Van Mierlo, Joeri .
APPLIED ENERGY, 2014, 113 :1575-1585