[1] 辛保安, 单葆国, 李琼慧, 等. “双碳”目标下“能源三要素”再思考 [J]. 中国电机工程学报, 2022, 42(9): 3117-3125. DOI:  10.13334/j.0258-8013.pcsee.212780.

XIN B A, SHAN B G, LI Q H, et al. Rethinking on the "three elements of energy" toward carbon peak and carbon neutrality [J]. Proceedings of the CSEE, 2022, 42(9): 3117-3125. DOI:  10.13334/j.0258-8013.pcsee.212780.
[2] ZHAO C Y, ANDERSEN P B, TRÆHOLT C, et al. Grid-connected battery energy storage system: a review on application and integration [J]. Renewable and sustainable energy reviews, 2023, 182: 113400. DOI:  10.1016/j.rser.2023.113400.
[3] 辛甜, 高啸天, 肖楷, 等. 使用工况对锂离子电池电化学性能的影响 [J]. 南方能源建设, 2024, 11(2): 139-145. DOI:  10.16516/j.ceec.2024.2.13.

XIN T, GAO X T, XIAO K, et al. Influence of service conditions on electrochemical performance of lithium-ion batteries [J]. Southern energy construction, 2024, 11(2): 139-145. DOI:  10.16516/j.ceec.2024.2.13.
[4] 李军徽, 陈国航, 马腾, 等. 高风电渗透率下液流电池储能系统调峰优化控制策略 [J]. 发电技术, 2024, 45(3): 434-447. DOI:  10.12096/j.2096-4528.pgt.23025.

LI J H, CHEN G H, MA T, et al. Optimal control strategy of peak shaving of flow battery energy storage system under high wind power permeability [J]. Power generation technology, 2024, 45(3): 434-447. DOI:  10.12096/j.2096-4528.pgt.23025.
[5] 张谦, 邓小松, 岳焕展, 等. 计及电池寿命损耗的电动汽车参与能量-调频市场协同优化策略 [J]. 电工技术学报, 2022, 37(1): 72-81. DOI:  10.19595/j.cnki.1000-6753.tces.211291.

ZHANG Q, DENG X S, YUE H Z, et al. Coordinated optimization strategy of electric vehicle cluster participating in energy and frequency regulation markets considering battery lifetime degradation [J]. Transactions of China electrotechnical society, 2022, 37(1): 72-81. DOI:  10.19595/j.cnki.1000-6753.tces.211291.
[6] LAI X, HUANG Y F, GU H H, et al. Remaining discharge energy estimation for lithium-ion batteries based on future load prediction considering temperature and ageing effects [J]. Energy, 2022, 238: 121754. DOI:  10.1016/j.energy.2021.121754.
[7] 肖曦, 田培根, 于璐, 等. 动力电池梯次利用储能系统电热安全研究现状及展望 [J]. 电气工程学报, 2022, 17(1): 206-224. DOI:  10.11985/2022.01.027.

XIAO X, TIAN P G, YU L, et al. Status and prospect of safety studies of cascade power battery energy storage system [J]. Journal of electrical engineering, 2022, 17(1): 206-224. DOI:  10.11985/2022.01.027.
[8] 于仲安, 肖宏亮, 夏强威, 等. 基于V2G模式下电动汽车参与的微电网优化调度仿真研究 [J/OL]. 系统仿真学报, 2014: 1-17. (2024-05-08) [2024-05-30]. DOI:  10.16182/j.issn1004731x.job.24-0183.

YU Z A, XIAO H L, XIA Q W, et al. Simulation study on optimizing microgrid scheduling with electric vehicle participation under V2G mode [J/OL]. Journal of system simulation, 2024: 1-17. (2024-05-08) [2024-05-30]. DOI:  10.16182/j.issn1004731x.job.24-0183.
[9] WANG J G, LU S, WANG Y Z, et al. Effect analysis on thermal behavior enhancement of lithium–ion battery pack with different cooling structures [J]. Journal of energy storage, 2020, 32: 101800. DOI:  10.1016/j.est.2020.101800.
[10] LIU X F, LI Y C, KANG Y Z, et al. An accurate co-estimation of core temperature and state of charge for lithium-ion batteries with electrothermal model [J]. IEEE journal of emerging and selected topics in power electronics, 2024, 12(1): 231-241. DOI:  10.1109/JESTPE.2023.3304754.
[11] 赵建峰, 何锋, 罗卫东, 等. 基于电热耦合模型的动力电池荷电状态估计 [J]. 计算机仿真, 2023, 40(10): 99-107. DOI:  10.3969/j.issn.1006-9348.2023.10.019.

ZHAO J F, HE F, LUO W D, et al. State of charge estimation of power batteries based on electrothermal coupling model [J]. Computer simulation, 2023, 40(10): 99-107. DOI:  10.3969/j.issn.1006-9348.2023.10.019.
[12] 孙丙香, 宋东林, 阮海军, 等. 基于自产热和外传热的锂离子电池热学模型参数辨识方法 [J]. 电工技术学报, 2024, 39(1): 278-288. DOI:  10.19595/j.cnki.1000-6753.tces.222104.

SUN B X, SONG D L, RUAN H J, et al. Parameter identification method of thermal model of lithium-ion battery based on self-generated heat and external heat transfer [J]. Transactions of China electrotechnical society, 2024, 39(1): 278-288. DOI:  10.19595/j.cnki.1000-6753.tces.222104.
[13] HE Y B, WANG B C, DENG H P, et al. Physics-reserved spatiotemporal modeling of battery thermal process: temperature prediction, parameter identification, and heat generation rate estimation [J]. Journal of energy storage, 2024, 75: 109604. DOI:  10.1016/j.est.2023.109604.
[14] ZHOU J H, CHEN L Q, ZHANG S P, et al. Distributed thermal monitoring for large-format Li-ion battery under limited sensing [J]. IEEE transactions on transportation electrification, 2024, 10(2): 3206-3217. DOI:  10.1109/TTE.2023.3302153.
[15] WEI P, LI H X. A spatio-temporal inference system for abnormality detection and localization of battery systems [J]. IEEE transactions on industrial informatics, 2023, 19(5): 6275-6283. DOI:  10.1109/TII.2022.3207749.
[16] LIU J, YADAV S, SALMAN M, et al. Review of thermal coupled battery models and parameter identification for lithium-ion battery heat generation in EV battery thermal management system [J]. International journal of heat and mass transfer, 2024, 218: 124748. DOI:  10.1016/j.ijheatmasstransfer.2023.124748.
[17] ZHU C J, XIE Y Y, YANG H D, et al. A nonlinear spatiotemporal modeling method combined with t-distributed stochastic neighbor embedding and broad learning system for the lithium-ion battery thermal process [J]. Engineering applications of artificial intelligence, 2024, 135: 108433. DOI:  10.1016/j.engappai.2024.108433.
[18] LIU Z, LI H X. A spatiotemporal estimation method for temperature distribution in lithium-ion batteries [J]. IEEE transactions on industrial informatics, 2014, 10(4): 2300-2307. DOI:  10.1109/TII.2014.2341955.
[19] YU Y B, HUANG T F, MIN H T, et al. Co-estimation of state of charge and internal temperature of pouch lithium battery based on multi-parameter time-varying electrothermal coupling model [J]. Journal of energy storage, 2023, 66: 107411. DOI:  10.1016/j.est.2023.107411.
[20] JEON C H, LEE Y, KIM R, et al. Development of equivalent circuit model for thermal runaway in lithium-ion batteries [J]. Journal of energy storage, 2023, 74: 109318. DOI:  10.1016/j.est.2023.109318.
[21] WU Q C, HUANG R, YU X L. Measurement of thermophysical parameters and thermal modeling of 21, 700 cylindrical battery [J]. Journal of energy storage, 2023, 65: 107338. DOI:  10.1016/j.est.2023.107338.
[22] 孙潇, 蔡春荣, 罗志斌, 等. Highview Power液化空气储能中试装置热力学分析 [J]. 南方能源建设, 2024, 11(2): 112-124. DOI:  10.16516/j.ceec.2024.2.11.

SUN X, CAI C R, LUO Z B, et al. Thermodynamic analysis of Highview Power's liquid air energy storage pilot plant [J]. Southern energy construction, 2024, 11(2): 112-124. DOI:  10.16516/j.ceec.2024.2.11.
[23] 牛朝露, 李泽浩, 司马文霞, 等. 用于储能电站热失控预警的热敏涂层材料研究 [J]. 南方能源建设, 2023, 10(5): 106-115. DOI:  10.16516/j.gedi.issn2095-8676.2023.05.014.

NIU C L, LI Z H, SIMA W X, et al. Research on thermosensitive coatings for thermal runaway warning in energy storage power station [J]. Southern energy construction, 2023, 10(5): 106-115. DOI:  10.16516/j.gedi.issn2095-8676.2023.05.014.
[24] 林浩, 张洪信, 赵清海. 锂离子电池三维电化学-热耦合模型及生热分析 [J]. 电源技术, 2019, 43(10): 1630-1632, 1698. DOI:  10.3969/j.issn.1002-087X.2019.10.014

LIN H, ZHANG H X, ZHAO Q H. Three dimensional electrochemical thermal coupling model and heat generation analysis of lithium-ion batteries [J]. Chinese journal of power source, 2019, 43(10): 1630-1632, 1698. DOI:  10.3969/j.issn.1002-087X.2019.10.014.
[25] ZHANG X Q, LI P C, HUANG B X, et al. Numerical investigation on the thermal behavior of cylindrical lithium-ion batteries based on the electrochemical-thermal coupling model [J]. International journal of heat and mass transfer, 2022, 199: 123449. DOI:  10.1016/j.ijheatmasstransfer.2022.123449.
[26] HUANG Y F, LAI X, REN D S, et al. Thermal and stoichiometry inhomogeneity investigation of large-format lithium-ion batteries via a three-dimensional electrochemical-thermal coupling model [J]. Electrochimica acta, 2023, 468: 143212. DOI:  10.1016/j.electacta.2023.143212.
[27] 孙建丹, 汪红辉, 储德韧, 等. 不同荷电状态三元锂离子电池热失控动力学研究 [J]. 电源技术, 2023, 47(8): 1040-1045. DOI:  10.3969/j.issn.1002-087X.2023.08.016.

SUN J D, WANG H H, CHU D R, et al. Kinetic study of thermal runaway behaviors of lithium-ion batteries with different SOCs [J]. Chinese journal of power source, 2023, 47(8): 1040-1045. DOI:  10.3969/j.issn.1002-087X.2023.08.016.
[28] HE C X, YUE Q L, WU M C, et al. A 3D electrochemical-thermal coupled model for electrochemical and thermal analysis of pouch-type lithium-ion batteries [J]. International journal of heat and mass transfer, 2021, 181: 121855. DOI:  10.1016/j.ijheatmasstransfer.2021.121855.
[29] JIANG W J, ZHOU Q, LU F, et al. A thermal-electrochemical-mechanical coupled model based on non-equilibrium thermodynamics of Li-ion batteries [J]. Journal of energy storage, 2022, 55: 105655. DOI:  10.1016/j.est.2022.105655.