Energy Storage Science and Technology ›› 2023, Vol. 12 ›› Issue (11): 3330-3339.doi: 10.19799/j.cnki.2095-4239.2023.0412
• Energy Storage Materials and Devices • Previous Articles Next Articles
Song XU1,2(), Mingyu WANG2,3, Liangsheng LI2,3, Liangdong ZHAO2,3, Zihui SUN1, Conghui ZHANG1, Zihan WANG1
Received:
2023-06-12
Revised:
2023-08-15
Online:
2023-11-05
Published:
2023-11-16
Contact:
Song XU
E-mail:songxu@zua.edu.cn
CLC Number:
Song XU, Mingyu WANG, Liangsheng LI, Liangdong ZHAO, Zihui SUN, Conghui ZHANG, Zihan WANG. Zinc-nickel battery based on a 3D conductive film and its application in intelligent lock[J]. Energy Storage Science and Technology, 2023, 12(11): 3330-3339.
Table 1
Self-discharge test of ZNB in 28 days storage at 25 ℃"
电池编号 | 初始容量/mAh | 初始电压/V | 常温28天后电压/V | 常温28天后 容量/mAh | 恢复容量/mAh | 电压保持率/% | 荷电保持率/% | 容量恢复率/% | 备注 |
---|---|---|---|---|---|---|---|---|---|
1 | 1421 | 1.855 | 1.780 | 1302 | 1410 | 96.0% | 91.7% | 99.2% | CCF |
2 | 1424 | 1.855 | 1.776 | 1291 | 1433 | 95.7% | 90.7% | 100.6% | CCF |
3 | 1448 | 1.857 | 1.780 | 1326 | 1435 | 95.9% | 91.6% | 99.1% | CCF |
1 | 1423 | 1.844 | 1.784 | 1317 | 1421 | 96.7% | 92.6% | 99.9% | CCF@KB-rGO |
2 | 1432 | 1.845 | 1.783 | 1324 | 1429 | 96.6% | 92.5% | 99.8% | CCF@KB-rGO |
3 | 1423 | 1.845 | 1.784 | 1314 | 1425 | 96.7% | 92.4% | 100.1% | CCF@KB-rGO |
Table 2
Self-discharge test of ZNB in 28 days storage at 60 ℃"
电池编号 | 初始容量/mAh | 初始电压/V | 60 ℃ 28天后电压/V | 60 ℃ 28天后容量/mAh | 恢复容量/mAh | 电压保持率/% | 荷电保持率/% | 容量恢复率/% | 备注 |
---|---|---|---|---|---|---|---|---|---|
1 | 1431 | 1.857 | 1.683 | 977 | 1331 | 90.6% | 68.3% | 93.0% | CCF |
2 | 1434 | 1.857 | 1.676 | 956 | 1339 | 90.3% | 66.6% | 93.4% | CCF |
3 | 1432 | 1.857 | 1.686 | 964 | 1352 | 90.8% | 67.3% | 94.4% | CCF |
1 | 1437 | 1.846 | 1.698 | 1025 | 1379 | 92.0% | 71.3% | 96.0% | CCF@KB-rGO |
2 | 1424 | 1.845 | 1.697 | 1029 | 1375 | 92.0% | 72.3% | 96.5% | CCF@KB-rGO |
3 | 1447 | 1.845 | 1.693 | 1028 | 1406 | 91.8% | 71.0% | 97.2% | CCF@KB-rGO |
1 | 王君, 柯明爽, 宋泽生, 等. 浅谈生物特征识别智能锁具的现状和前景[J]. 科技与创新, 2021(21): 38-39, 41. |
WANG J, KE M S, SONG Z S, et al. On the present situation and prospect of biometric intelligent locks[J]. Science and Technology & Innovation, 2021(21): 38-39, 41. | |
2 | ZHU Z G, CHENG Y. Application of attitude tracking algorithm for face recognition based on OpenCV in the intelligent door lock[J]. Computer Communications, 2020, 154: 390-397. |
3 | 王莉, 谢乐琼, 田光宇, 等. 锂离子电池安全事故:安全性问题,还是可靠性问题[J]. 储能科学与技术, 2021, 10(1): 1-6. |
WANG L, XIE L Q, TIAN G Y, et al. Safety accidents of Li-ion batteries: Reliability issues or safety issues[J]. Energy Storage Science and Technology, 2021, 10(1): 1-6. | |
4 | ZHANG X H, LI Z, LUO L G, et al. A review on thermal management of lithium-ion batteries for electric vehicles[J]. Energy, 2022, 238: 121652. |
5 | KHODAYAR N, NOORI A, RAHMANIFAR M S, et al. Super-fast and super-long-life rechargeable zinc battery[J]. Advanced Energy Materials, 2022, 12(43): 2202784. |
6 | REN D S, FENG X N, LU L G, et al. An electrochemical-thermal coupled overcharge-to-thermal-runaway model for lithium ion battery[J]. Journal of Power Sources, 2017, 364: 328-340. |
7 | PARKER J F, PALA I R, CHERVIN C N, et al. Minimizing shape change at Zn sponge anodes in rechargeable Ni-Zn cells: Impact of electrolyte formulation[J]. Journal of the Electrochemical Society, 2015, 163(3): A351-A355. |
8 | 王江林, 徐学良, 丁青青, 等. 锌镍电池在储能技术领域中的应用及展望[J]. 储能科学与技术, 2019, 8(3): 506-511. |
WANG J L, XU X L, DING Q Q, et al. Application and prospect of zinc nickel battery in energy storage technology[J]. Energy Storage Science and Technology, 2019, 8(3): 506-511. | |
9 | SHANGGUAN E B, LI L Q, WU C K, et al. Microemulsion synthesis of 3D flower-like calcium zincate anode materials with superior high-rate and cycling property for advanced zinc-based batteries[J]. Journal of Alloys and Compounds, 2021, 853: 156965. |
10 | PARKER J F, CHERVIN C N, PALA I R, et al. Rechargeable nickel-3D zinc batteries: An energy-dense, safer alternative to lithium-ion[J]. Science, 2017, 356(6336): 415-418. |
11 | ZHAO Z Q, LIU B, SHEN Y H, et al. Comparative study of intrinsically safe zinc-nickel batteries and lead-acid batteries for energy storage[J]. Journal of Power Sources, 2021, 510: 230393. |
12 | SHEN Y H, XU L Y, WANG Q Y, et al. Root reason for the failure of a practical Zn-Ni battery: Shape changing caused by uneven current distribution and Zn dissolution[J]. ACS Applied Materials & Interfaces, 2021, 13(43): 51141-51150. |
13 | ZHOU W H, ZHU D, HE J A, et al. A scalable top-down strategy toward practical metrics of Ni-Zn aqueous batteries with total energy densities of 165 W h kg-1 and 506 W h L-1[J]. Energy & Environmental Science, 2020, 13(11): 4157-4167. |
14 | WANG Q Y, LIU X R, WANG H Z, et al. Ti4O7 regulating both Zn(OH) 4 2 - and electrons for improving Zn-Ni batteries[J]. Chemical Engineering Journal, 2022, 443: 136342. |
15 | YUAN L, CAI J B, XU J C, et al. In situ growth of ZnO nanosheets on Ti3C2Tx MXene for Superior-Performance Zinc-Nickel secondary battery[J]. Chemical Engineering Journal, 2023, 451: 139073. |
16 | ZHENG J X, ZHAO Q, TANG T, et al. Reversible epitaxial electrodeposition of metals in battery anodes[J]. Science, 2019, 366(6465): 645-648. |
17 | JI J, ZHU Z L, DU H R, et al. Zinc-contained alloy as a robustly adhered interfacial lattice locking layer for planar and stable zinc electrodeposition[J]. Advanced Materials, 2023, 35(20): 2211961. |
18 | 中华人民共和国工业和信息化部. 锌镍蓄电池通用规范: SJ/T 11755—2020[S]. |
19 | 国家质量监督检验检疫总局. 碱性或其他非酸性电解液的二次电池和电池组-密封金属氢化物镍可充单体电池: GB/T 15100—2003[S]. 北京: 中国标准出版社, 2004. |
General Administration of Quality Supervision, Inspection and Quarantine of the People's Republic of China. Secondary cells and batteries containing alkaline or other ono-acid electrolytes-sealed nickel-metal hydride rechargeable single cells: GB/T 15100—2003[S]. Beijing: Standards Press of China, 2004. | |
20 | 苏林华, 高春辉, 陈明国, 等. LiFePO4锂离子电池的低温性能改进[J]. 电池, 2022, 52(1): 63-66. |
SU L H, GAO C H, CHEN M G, et al. The improving of low temperature performance of LiFePO4 Li-ion battery[J]. Battery Bimonthly, 2022, 52(1): 63-66. | |
21 | 中华人民共和国公安部. 电子防盗锁: GA 374—2019[S]. 北京: 中国标准出版社, 2019. |
22 | 中华人民共和国公安部. 指纹防盗锁通用技术条件: GA 701—2007[S]. 北京: 中国标准出版社, 2008. |
[1] | Shiying ZHAN, Huanhuan LI, Fang HU. The research process of cathode materials for aqueous zinc-ioncapacitors [J]. Energy Storage Science and Technology, 2023, 12(9): 2799-2810. |
[2] | Zhihao LIU, Tong DU, Ruirui LI, Tao DENG. Developments of wide temperature range, high voltage and safe EC-free electrolytes [J]. Energy Storage Science and Technology, 2023, 12(8): 2504-2525. |
[3] | Jin LI, Qingsong WANG, Depeng KONG, Xiaodong WANG, Zhenhua YU, Yanfei LE, Xinyan HUANG, Zhenkai HU, Houfu WU, Huabin FANG, Caowei, Shaoyu ZHANG, Ping ZHUO, Ye CHEN, Ziting LI, Wenxin MEI, Yue ZHANG, Lixiang ZHAO, Liang TANG, Zonghou HUANG, Chi CHEN, Yanhu LIU, Yuxi CHU, Xiaoyuan XU, Jin ZHANG, Yikai LI, Rong FENG, Biao YANG, Bo HU, Xiaoying YANG. Research progress on the safety assessment of lithium-ion battery energy storage [J]. Energy Storage Science and Technology, 2023, 12(7): 2282-2301. |
[4] | Jialiang LIU, Cuijing GUO, Huanling WANG. Safety detection and verification of energy storage in lithium-ion battery based on fire fault tree model [J]. Energy Storage Science and Technology, 2023, 12(5): 1695-1704. |
[5] | Kuijie LI, Ping LOU, Minyuan GUAN, Jinlong MO, Weixin ZHANG, Yuancheng CAO, Shijie CHENG. A review of multi-dimensional signal evolution and coupling mechanism of lithium-ion battery thermal runaway [J]. Energy Storage Science and Technology, 2023, 12(3): 899-912. |
[6] | Song CI, Congjia ZHANG, Baochang LIU, Yanglin ZHOU. Dynamic reconfigurable battery energy storage technology: Principle and application [J]. Energy Storage Science and Technology, 2023, 12(11): 3445-3455. |
[7] | Shuang SONG, Fu LI, Xisheng TANG. Research progress on the safety-state assessment of lithium-ion batteries [J]. Energy Storage Science and Technology, 2023, 12(11): 3545-3555. |
[8] | Hong ZHANG, Jin CHONG, Jinhui JIANG, Tingfeng CHEN, Zihua LIU, Fangxiang ZHONG, Xiaowei ZHANG. Analysis and research on hydrogen production from using water to extinguish the energy storage cabinet of lithium-ion batteries [J]. Energy Storage Science and Technology, 2023, 12(10): 3145-3154. |
[9] | Linwang DENG, Tianyu FENG, Shiwei SHU, Bin GUO, Zifeng ZHANG. Nondestructive lithium plating online detection for lithium-ion batteries: A review [J]. Energy Storage Science and Technology, 2023, 12(1): 263-277. |
[10] | Linwang DENG, Tianyu FENG, Shiwei SHU, Zifeng ZHANG, Bin GUO. Review of a fast-charging strategy and technology for lithium-ion batteries [J]. Energy Storage Science and Technology, 2022, 11(9): 2879-2890. |
[11] | Yawen ZHAO, Yu HUANG, Yanru ZHANG. Analysis of safety test standard of rail transit power lithium-ion battery [J]. Energy Storage Science and Technology, 2022, 11(8): 2505-2518. |
[12] | Tao YIN, Longzhou JIA, Xiuliang CHANG, Zuoqiang DAI, Lili ZHENG. Research on thermal safety of soft-pack LiFePO4 battery after high-voltage float charge [J]. Energy Storage Science and Technology, 2022, 11(8): 2546-2555. |
[13] | Yong XIAO, Jun XU. Risk assessment of battery safe operation in energy storage power station based on combination weighting and TOPSIS [J]. Energy Storage Science and Technology, 2022, 11(8): 2574-2584. |
[14] | Bozheng LIU, Liuyang CAO, Tao ZENG, Yaxia YIN, Yuguo GUO. Effect of the binding force on the safety of LiFePO4 cells [J]. Energy Storage Science and Technology, 2022, 11(8): 2556-2563. |
[15] | Liang TANG, Xiaobo YIN, Houfu WU, Pengjie LIU, Qingsong WANG. Demand for safety standards in the development of the electrochemical energy storage industry [J]. Energy Storage Science and Technology, 2022, 11(8): 2645-2652. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||