1 |
HOLLINGER A S, MCANALLEN D R, BROCKETT M T, et al. Cylindrical lithium-ion structural batteries for drones[J]. International Journal of Energy Research, 2020, 44(1): 560-566.
|
2 |
RODRIGUES M T F, BABU G, GULLAPALLI H, et al. A materials perspective on Li-ion batteries at extreme temperatures[J]. Nature Energy, 2017, 2: 17108.
|
3 |
NAGY A. Electric aircraft-present and future[J]. Production Engineering Archives, 2019, 23(23): 36-40.
|
4 |
Federal Aviation Administration. Lithium batteries & lithium battery-powered devices[R/OL].[[2021-10-01].https://www.faa.gov/hazmat/resources/lithium_batteries/media/Battery_incident_chart.
|
5 |
刘奕, 张旭, 陈现涛, 等. 不同压力下软包装锂离子电池的热失控研究[J]. 电池, 2020, 50(3): 237-241.
|
|
LIU Y, ZHANG X, CHEN X T, et al. Study of thermal runaway of pouch Li-ion battery under different pressures[J]. Battery Bimonthly, 2020, 50(3): 237-241.
|
6 |
陈现涛, 张旭, 赵一帆, 等. 低气压及加热方式对锂离子电池热特性的影响[J]. 电池, 2021, 51(6): 558-562.
|
|
CHEN X T, ZHANG X, ZHAO Y F, et al. Effect of low pressure and heating method on thermal characteristics of Li-ion battery[J]. Battery Bimonthly, 2021, 51(6): 558-562.
|
7 |
XIE S, REN L X, YANG X Y, et al. Influence of cycling aging and ambient pressure on the thermal safety features of lithium-ion battery[J]. Journal of Power Sources, 2020, 448: doi: 10.1016/j.jpowsour.2019.227425.
|
8 |
SU L S, ZHANG J B, WANG C J, et al. Identifying main factors of capacity fading in lithium ion cells using orthogonal design of experiments[J]. Applied Energy, 2016, 163: 201-210.
|
9 |
戴海峰, 周艳新, 顾伟军, 等. 电动汽车用动力锂离子电池寿命问题研究综述[J]. 电源技术, 2014, 38(10): 1952-1954, 1982.
|
|
DAI H F, ZHOU Y X, GU W J, et al. Review on life studies of traction Li-ion batteries in electric vehicles[J]. Chinese Journal of Power Sources, 2014, 38(10): 1952-1954, 1982.
|
10 |
任东生, 冯旭宁, 韩雪冰, 等. 锂离子电池全生命周期安全性演变研究进展[J]. 储能科学与技术, 2018, 7(6): 957-966.
|
|
REN D S, FENG X N, HAN X B, et al. Recent progress on evolution of safety performance of lithium-ion battery during aging process[J]. Energy Storage Science and Technology, 2018, 7(6): 957-966.
|
11 |
OUYANG M G, REN D S, LU L G, et al. Overcharge-induced capacity fading analysis for large format lithium-ion batteries with LiyNi1/3Co1/3Mn1/3O2+LiyMn2O4 composite cathode[J]. Journal of Power Sources, 2015, 279: 626-635.
|
12 |
吴静云, 侍成, 郭鹏宇, 等. 梯次利用阀控式铅酸电池过充安全特性[J]. 中国安全科学学报, 2020, 30(4): 14-20.
|
|
WU J Y, SHI C, GUO P Y, et al. Overcharging safety characteristics of retired VRLA[J]. China Safety Science Journal, 2020, 30(4): 14-20.
|
13 |
OUYANG D X, WENG J W, CHEN M Y, et al. Impact of high-temperature environment on the optimal cycle rate of lithium-ion battery[J]. Journal of Energy Storage, 2020, 28: doi: 10.1016/j.est.2020.102420.
|
14 |
OUYANG M G, CHU Z Y, LU L G, et al. Low temperature aging mechanism identification and lithium deposition in a large format lithium iron phosphate battery for different charge profiles[J]. Journal of Power Sources, 2015, 286: 309-320.
|
15 |
ZHU G L, WEN K C, LV W Q, et al. Materials insights into low-temperature performances of lithium-ion batteries[J]. Journal of Power Sources, 2015, 300: 29-40.
|
16 |
王绥军, 傅凯, 官亦标, 等. 软包磷酸铁锂电池低温热安全性能研究[J]. 储能科学与技术, 2016, 5(2): 204-209.
|
|
WANG S J, FU K, GUAN Y B, et al. Low temperature thermal safety performance of soft packaged lithium iron phosphate battery[J]. Energy Storage Science and Technology, 2016, 5(2): 204-209.
|
17 |
廖成龙, 王刘涛, 王健雁, 等. 动力锂电池系统运行环境条件对其性能影响的研究[J]. 化工新型材料, 2020, 48(7): 167-170.
|
|
LIAO C L, WANG L T, WANG J Y, et al. Study on the influence of operating environment condition on the performance of REESS[J]. New Chemical Materials, 2020, 48(7): 167-170.
|
18 |
MUSSA A S, KLETT M, LINDBERGH G, et al. Effects of external pressure on the performance and ageing of single-layer lithium-ion pouch cells[J]. Journal of Power Sources, 2018, 385: 18-26.
|
19 |
CHOI Y H, LIM H K, SEO J H, et al. Development of standardized battery pack for next-generation PHEVs in considering the effect of external pressure on lithium-ion pouch cells[J]. SAE International Journal of Alternative Powertrains, 2018, 7(3): 195-205.
|
20 |
ZHANG J, . Effects of pressure evolution on the decrease in the capacity of lithium-ion batteries[J]. International Journal of Electrochemical Science, 2020: 8422-8436.
|
21 |
邹舜章. 压力对软包锂离子电池性能的影响及对策研究[D]. 长沙: 湖南大学, 2017.
|
|
ZOU S Z. Effect of pressure on performance of soft-packaged lithium-ion battery and its countermeasures[D]. Changsha: Hunan University, 2017.
|
22 |
张军, 曾云路, 邹舜章, 等. 软包锂电池在适当压力下的膨胀及寿命研究[J]. 电源技术, 2019, 43(10): 1641-1644.
|
|
ZHANG J, ZENG Y L, ZOU S Z, et al. Battery expansion and life study of soft-packaged lithium batteries under appropriate pressure[J]. Chinese Journal of Power Sources, 2019, 43(10): 1641-1644.
|
23 |
鲁怀敏, 方海峰, 何向明, 等. 压力对三元锂电池膨胀及充放电性能的影响[J]. 电源技术, 2017, 41(5): 686-688.
|
|
LU H M, FANG H F, HE X M, et al. Effect of pressure on charge and discharge performance and expansion of ternary lithium battery[J]. Chinese Journal of Power Sources, 2017, 41(5): 686-688.
|
24 |
张军, 韩旭, 胡春姣, 等. 软包锂离子电池模块结构压力的优化[J]. 汽车工程, 2016, 38(6): 669-673, 715.
|
|
ZHANG J, HAN X, HU C J, et al. An optimization of the pressing force applied onto the module structure of soft-package lithium-ion battery[J]. Automotive Engineering, 2016, 38(6): 669-673, 715.
|
25 |
LI J, DOWNIE L E, MA L, et al. Study of the failure mechanisms of LiNi0.8Mn0.1Co0.1O2Cathode material for lithium ion batteries[J]. Journal of the Electrochemical Society, 2015, 162(7): A1401-A1408.
|
26 |
YANG X G, ZHANG G S, GE S H, et al. Fast charging of lithium-ion batteries at all temperatures[J]. Proceedings of the National Academy of Sciences of the United States of America, 2018, 115(28): 7266-7271.
|
27 |
PELED E, MENKIN S. Review—SEI: Past, present and future[J]. Journal of the Electrochemical Society, 2017, 164(7): A1703-A1719.
|
28 |
LIU P, WANG J, HICKS-GARNER J, et al. Aging mechanisms of LiFePO4 batteries deduced by electrochemical and structural analyses[J]. Journal of the Electrochemical Society, 2010, 157(4): A499.
|
29 |
KATO H, KOBAYASHI Y, MIYASHIRO H. Differential voltage curve analysis of a lithium-ion battery during discharge[J]. Journal of Power Sources, 2018, 398: 49-54.
|