Citation: | AN Fu-qiang, ZHOU Wei-nan, LI Ping. Sensitivity of electrodes in a lithium ion cell to temperature and SOC[J]. Chinese Journal of Engineering, 2018, 40(6): 729-734. doi: 10.13374/j.issn2095-9389.2018.06.011 |
[1] |
Goodenough J B, Park K S. The Li-ion rechargeable battery:a perspective. J Am Chem Soc, 2013, 135(4):1167
|
[2] |
Scrosati B, Garche J. Lithium batteries:status, prospects and future. J Power Sources, 2010, 195(9):2419
|
[3] |
Wu H, Cui Y. Designing nanostructured Si anodes for high energy lithium ion batteries. Nano Today, 2012, 7(5):414
|
[4] |
Dai Y L, Srinivasan V. On graded electrode porosity as a design tool for improving the energy density of batteries. J Electrochem Soc, 2016, 163(3):A406
|
[6] |
Baumhöfer T, Brühl M, Rothgang S, et al. Production caused variation in capacity aging trend and correlation to initial cell performance. J Power Sources, 2014, 247:332
|
[9] |
An F Q, Huang J, Wang C Y, et al. Cell sorting for parallel lithium-ion battery systems:evaluation based on an electric circuit model. J Energy Storage, 2016, 6:195
|
[10] |
Jannesari H, Emami M D, Ziegler C. Effect of electrolyte transport properties and variations in the morphological parameters on the variation of side reaction rate across the anode electrode and the aging of lithium ion batteries. J Power Sources, 2011, 196(22):9654
|
[11] |
Santhanagopalan S, White R E. Quantifying cell-to-cell variations in lithium ion batteries. Int J Electrochem, 2012, 2012:395838-1
|
[12] |
Kenney B, Darcovich K, MacNeil D D, et al. Modelling the impact of variations in electrode manufacturing on lithium-ion battery modules. J Power Sources, 2012, 213:391
|
[13] |
An F Q, Chen L F, Huang J, et al. Rate dependence of cell-tocell variations of lithium-ion cells. Sci Rep, 2016, 6:35051
|
[14] |
Zhang J B, Huang J, Chen L F, et al. Lithium-ion battery discharge behaviors at low temperatures and cell-to-cell uniformity. J Autom Safety Energy, 2014, 5(4):391
|