1.湖南大学土木工程学院,湖南 长沙 410082
2.湖南大学汽车车身先进设计制造国家重点 实验室,湖南 长沙 410082
潘振飞(1997—),男,博士研究生,研究方向电池热管理,E-mail:panzf1997@126.com;
罗伊默,教授,研究方向为分布式储能技术、光伏建筑一体化及电池热管理,E-mail:yimoluo@hnu.edu.cn。
收稿:2026-01-31,
修回:2026-02-10,
纸质出版:2026-03-28
移动端阅览
潘振飞, 黄沛丰, 罗伊默, 等. 间接冷板与浸没式液冷在锂离子电池热管理中的研究进展[J]. 储能科学与技术, 2026, 15(3): 1023-1038.
PAN Zhenfei, HUANG Peifeng, LUO Yimo, et al. Research progress on indirect cold plate and immersion cooling for lithium-ion battery thermal management[J]. Energy Storage Science and Technology, 2026, 15(3): 1023-1038.
潘振飞, 黄沛丰, 罗伊默, 等. 间接冷板与浸没式液冷在锂离子电池热管理中的研究进展[J]. 储能科学与技术, 2026, 15(3): 1023-1038. DOI: 10.19799/j.cnki.2095-4239.2026.0104.
PAN Zhenfei, HUANG Peifeng, LUO Yimo, et al. Research progress on indirect cold plate and immersion cooling for lithium-ion battery thermal management[J]. Energy Storage Science and Technology, 2026, 15(3): 1023-1038. DOI: 10.19799/j.cnki.2095-4239.2026.0104.
面对日益增长的锂离子电池热管理需求与热失控挑战,液冷技术凭借卓越的散热性能已成为电池热管理的主流发展方向。本文系统综述了锂离子电池液冷技术的最新研究进展。首先,针对间接冷板技术,重点梳理了流道布局优化、仿生通道设计、拓扑优化及微通道等结构创新策略,并分析了其与相变材料等结合的复合热管理系统在抑制热失控传播方面的研究成果。其次,针对单相浸没液冷技术,从冷却液的性能评估、系统结构的设计优化、传热机理,以及热失控传播抑制四个关键维度进行了深入剖析。再次,对于双相浸没液冷,重点从气泡动力学视角阐释了相变传热机理,并基于此给出了强化传热的指导原则。最后,结合产业现状展望了技术发展趋势,指出未来亟需系统揭示冷却液关键物性参数与电池热管理性能及热失控抑制能力之间的定量关系,建立设计准则以指导兼具高性能与环保性的新一代工质开发;同时,应基于传热机理深化结构创新,重点突破极端热滥用工况下的散热极限,从而实现对热失控及热蔓延的高效抑制。
In response to the increasingly stringent thermal management requirements and thermal runaway challenges associated with lithium-ion batteries
liquid cooling has emerged as a mainstream thermal management strategy due to its superior heat dissipation capability. This review systematically summarizes recent research progress in liquid cooling technologies for lithium-ion batteries. First
for indirect cold plate cooling
various structural innovation strategies
including flow-channel layout optimization
biomimetic channel design
topology optimization
and microchannel configurations
are systematically reviewed
with particular emphasis on hybrid thermal management systems coupled with phase change materials for suppressing thermal runaway propagation. Second
single-phase immersion cooling is critically analyzed from four key perspectives: coolant property evaluation
system structural and flow-channel optimization
heat transfer mechanisms
and thermal runaway mitigation. Third
for two-phase immersion cooling
phase-change heat transfer mechanisms are elucidated from the perspective of bubble dynamics
on the basis of which design principles for heat transfer enhancement are proposed. Finally
in light of current industrial development
future research directions are discussed. It is highlighted that a systematic understanding of the quantitative relationships between key coolant thermophysical properties
battery thermal management performance
and thermal runaway suppression capability is urgently required to establish unified design guidelines for the development of next-generation coolants with both high performance and environmental sustainability. Meanwhile
structural innovation guided by fundamental heat transfer mechanisms should be further advanced to overcome heat dissipation limits under extreme thermal abuse conditions
thereby enabling effective mitigation of thermal runaway and its propagation.
梁沁沁, 韩方源, 唐彬, 等. 锂/钠电池热管理系统中液冷技术研究进展[J]. 储能科学与技术, 2026, 15(1): 275-292.
LIANG Q Q, HAN F Y, TANG B, et al. Research progress on liquid cooling for thermal management of lithium-and sodium-batteries[J]. Energy Storage Science and Technology, 2026, 15(1): 275-292.
刘树宇, 罗丁. 均热板耦合热电制冷器的方形电池热管理系统数值研究[J]. 储能科学与技术, 2026, 15(1): 266-274.
LIU S Y, LUO D. Numerical investigation of flat battery thermal management system integrated with vapor chamber and thermoelectric coolers[J]. Energy Storage Science and Technology, 2026, 15(1): 266-274.
NASIRI M, HADIM H. Advances in battery thermal management: Current landscape and future directions[J]. Renewable and Sustainable Energy Reviews, 2024, 200: 114611. DOI:10.1016/j.rser.2024.114611.
CHEN K, WU W X, YUAN F, et al. Cooling efficiency improvement of air-cooled battery thermal management system through designing the flow pattern[J]. Energy, 2019, 167: 781-790. DOI:10.1016/j.energy.2018.11.011.
金远, 韩甜, 韩鑫, 等. 锂离子电池热管理综述[J]. 储能科学与技术, 2019, 8(S1): 23-30.
JIN Y, HAN T, HAN X, et al. A review on thermal management techniques for lithium-ion battery[J]. Energy Storage Science and Technology, 2019, 8(S1): 23-30.
WU W X, YANG X Q, ZHANG G Q, et al. Experimental investigation on the thermal performance of heat pipe-assisted phase change material based battery thermal management system[J]. Energy Conversion and Management, 2017, 138: 486-492. DOI:10.1016/j.enconman.2017.02.022.
王圣, 李新, 蒋维, 等. 锂离子电池液冷热管理系统研究进展[J]. 消防科学与技术, 2024, 43(5): 620-625. DOI:10.20168/j.1009-0029. 2024.05.620.06.
WANG S, LI X, JIANG W, et al. Research progress in thermal management system of lithium-ion battery on liquid cooling[J]. Fire Science and Technology, 2024, 43(5): 620-625. DOI:10.20168/j.1009-0029.2024.05.620.06.
KOUCHEH A B, SHARBATI P, ÜNLÜ C, et al. Comprehensive evaluation of battery cooling mechanisms including two-phase immersion with 3 M™ NOVEC™-7000 and 7100[J]. Energy Conversion and Management, 2026, 348: 120780. DOI:10.1016/j.enconman.2025.120780.
LIAO G L, WANG W D, ZHANG F, et al. Thermal performance of lithium-ion battery thermal management system based on nanofluid[J]. Applied Thermal Engineering, 2022, 216: 118997. DOI:10.1016/j.applthermaleng.2022.118997.
ADHIKARI N, BHANDARI R, JOSHI P. Thermal analysis of lithium-ion battery of electric vehicle using different cooling medium[J]. Applied Energy, 2024, 360: 122781. DOI:10.1016/j.apenergy.2024.122781.
侯竣升, 李栋宇, 黄磊, 等. 氧化铝纳米流体液冷电池热管理性能研究[J/OL]. 化工学报, 1-10. https://link.cnki.net/urlid/11.1946.TQ. 20251230.1957.004.
HOU J S, LI D Y, HUANG L, et al. Research on aluminum oxide nanofluid liquid cooling battery thermal management performance[J/OL]. CIESC Journal, 1-10. https://link.cnki.net/urlid/11.1946.TQ.20251230.1957.004.
曹嘉豪. 液体冷却与相变材料耦合式电池热管理系统的性能研究[D]. 广州: 华南理工大学, 2022.
CAO J H. Performance investigation on liquid cooling and phase change material coupled battery thermal management system[D]. Guangzhou: South China University of Technology, 2022.
SUI Z G, LIN H S, SUN Q, et al. Multi-objective optimization of efficient liquid cooling-based battery thermal management system using hybrid manifold channels[J]. Applied Energy, 2024, 371: 123766. DOI:10.1016/j.apenergy.2024.123766.
FU L X, ZHANG Z D, SHENG L, et al. Pouch lithium-ion battery thermal management by using a new liquid-cooling plate with honeycomb-like fins[J]. Case Studies in Thermal Engineering, 2025, 69: 105945. DOI:10.1016/j.csite.2025.105945.
SHI C W, XU J, GUO Z C, et al. Passive flow rate regulation and unequally spaced channel based battery thermal management system[J]. Energy, 2025, 320: 135331. DOI:10.1016/j.energy.2025.135331.
AN Z J, ZHAO S F, DU X Z, et al. Optimization design of lithium-ion battery thermal management system based on thermal resistance network analysis and cold plate arrangement[J]. Thermal Science and Engineering Progress, 2025, 68: 104335. DOI:10.1016/j.tsep.2025.104335.
DONG H Y, CHEN X C, YAN S T, et al. Multi-objective optimization of lithium-ion battery pack thermal management systems with novel bionic lotus leaf channels using NSGA-II and RSM[J]. Energy, 2025, 314: 134226. DOI:10.1016/j.energy.2024. 134226.
RADMAN G, MOJRA A, SOLTANI M, et al. Bio-inspired porous channels for thermal management of lithium-ion batteries: The PorousMorphoGrid approach[J]. Energy Conversion and Management, 2026, 347: 120550. DOI:10.1016/j.enconman.2025. 120550.
LIU N, JIANG Y M, LIU X J, et al. Thermal performance analysis and structure optimization of bionic shark skin channel liquid cooling plate for lithium ion battery[J]. Applied Thermal Engineering, 2025, 279: 127683. DOI:10.1016/j.applthermaleng. 2025.127683.
HUANG Z H, PU J H, DING Z L, et al. Advanced thermal management of LiFePO 4 battery modules: A liquid cold plate design via non-uniform heat source topology optimization[J ] . Journal of Power Sources, 2026, 663: 238938. DOI:10.1016/j.jpowsour.2025.238938.
SUN W, LI P, CHENG W M, et al. Novel hybrid thermal management system for cylindrical lithium-ion battery based on CPCM and topology-optimized liquid cooling[J]. Energy, 2025, 329: 136719. DOI:10.1016/j.energy.2025.136719.
GUO C, LIU H L, GUO Q, et al. Investigations on a novel cold plate achieved by topology optimization for lithium-ion batteries[J]. Energy, 2022, 261: 125097. DOI:10.1016/j.energy.2022.125097.
LIN X W, SHI M Y, ZHOU Z F, et al. Multi-objective topology optimization design of liquid-based cooling plate for 280 Ah prismatic energy storage battery thermal management[J]. Energy Conversion and Management, 2025, 325: 119440. DOI:10.1016/j.enconman.2024.119440.
AN Z G, LI D L, ZHANG C J, et al. Behaviours of thermal management system with micro channels for cylindrical Lithium-ion cells under Fuzzy-PID control strategy[J]. Applied Thermal Engineering, 2023, 233: 121089. DOI:10.1016/j.applthermaleng. 2023.121089.
MOHAPATRA J R, MOHARANA M K, PANCHAL S. Indirect liquid-cooled lithium-ion battery module with improved circuitous minichannel cold plate design: A numerical study involving the effect of different flow configurations[J]. Journal of Thermal Analysis and Calorimetry, 2025, 150(21): 17841-17868. DOI:10.1007/s10973-025-14647-1.
HUANG L, PIONTEK U, CHEN M B, et al. Thermal performance of cold plate based on phase change emulsion for Li-ion battery[J]. Energy, 2023, 282: 128743. DOI:10.1016/j.energ y.2023. 128743.
JIANG G W, WEN H, PENG C Y. A novel battery thermal management based on composite phase change material with liquid-assisted cooling for different ambient temperatures[J]. Applied Thermal Engineering, 2024, 252: 123686. DOI:10.1016/j.applthermaleng.2024.123686.
CHEN H F, WEI G S, XU L, et al. Performance study on a novel hybrid thermal management system for cylindrical lithium-ion battery pack based on liquid cooling and PCM[J]. Applied Thermal Engineering, 2025, 271: 126392. DOI:10.1016/j.applthermaleng.2025.126392.
FAN Y W, WANG Z H, YANG H N, et al. Performance analysis and optimized design of hybrid battery thermal management system integrating leak-free PCM with liquid cooling under extreme temperature conditions[J]. Energy, 2025, 341: 139404. DOI:10.1016/j.energy.2025.139404.
GONG J L, LI L, GONG J H. Hybrid cooling systems for suppressing thermal runaway propagation in a lithium-ion battery module[J]. Thermal Science and Engineering Progress, 2025, 64: 103845. DOI:10.1016/j.tsep.2025.103845.
LIU Y, ZHOU Z F, WU W T, et al. Simulations on hybrid thermal management of mini-channel cold plate and PCM for lithium-ion batteries under discharging and thermal runaway conditions[J]. Case Studies in Thermal Engineering, 2024, 60: 104837. DOI:10.1016/j.csite.2024.104837.
HAN X J, LI C R, LYU P Z, et al. Research on thermal runaway propagation of lithium-ion batteries based on cold plate cooling and flame-retardant materials[J]. Journal of Energy Storage, 2025, 110: 115271. DOI:10.1016/j.est.2024.115271.
XIN Z C, TANG W Y, YAO W, et al. A review of thermal management of batteries with a focus on immersion cooling[J]. Renewable and Sustainable Energy Reviews, 2025, 217: 115751. DOI:10.1016/j.rser.2025.115751.
曾少鸿, 吴伟雄, 刘吉臻, 等. 锂离子电池浸没式冷却技术研究综述[J]. 储能科学与技术, 2023, 12(9): 2888-2903.
ZENG S H, WU W X, LIU J Z, et al. A review of research on immersion cooling technology for lithium-ion batteries[J]. Energy Storage Science and Technology, 2023, 12(9): 2888-2903.
LI W L, WANG Y W, WU W Y, et al. Analysis of immersion cooling performance for LiFePO 4 battery packs: Coolant effect and optimization[J ] . Thermal Science and Engineering Progress, 2025, 64: 103830. DOI:10.1016/j.tsep.2025.103830.
SHAH R, HUANG C, KARMAKAR G, et al. Potential of natural esters as immersion coolant in electric vehicles[J]. Energies, 2025, 18(15): DOI:10.3390/en18154145.
GAO Q, LU Y, LIU X D, et al. A novel pulse liquid immersion cooling strategy for lithium-ion battery pack[J]. Energy, 2024, 310: 133266. DOI:10.1016/j.energy.2024.133266.
ABDEL-HAFEEZ A M, EFFAT M B, HASSAN O, et al. Effect of intercell spacing and operating conditions on the performance of prismatic lithium-ion batteries cooled by dielectric immersion Fluids: A numerical study[J]. International Journal of Thermal Sciences, 2025, 211: 109680. DOI:10.1016/j.ijthermalsc i.2025. 109680.
ZENG Z, YUAN N L, SONG C Y, et al. Integrating CFD and data-driven techniques for the optimization of dielectric coolants in EV battery immersion cooling systems[J]. International Commu nications in Heat and Mass Transfer, 2025, 162: 108591. DOI:10.1016/j.icheatmasstransfer.2025.108591.
LIU Q, JU X, QU T, et al. Single-phase immersion fluid selection for Li-ion battery modules: From the viewpoint of heat transfer[J]. Journal of Energy Storage, 2025, 118: 116265. DOI:10.1016/j.est.2025.116265.
LIU J H, CHEN H, YANG M J, et al. Comparative study of natural ester oil and mineral oil on the applicability of the immersion cooling for a battery module[J]. Renewable Energy, 2024, 224: 120187. DOI:10.1016/j.renene.2024.120187.
CAO X, SHI Q L, LIU Q, et al. Full-scale simulation of a 372 kW/372 kWh whole-cluster immersion cooling lithium-ion battery cluster and battery thermal management system design[J]. Case Studies in Thermal Engineering, 2024, 63: 105377. DOI:10.1016/j.csite.2024.105377.
DAI H S, YANG C X, ZHANG F, et al. Transient heat dissipation performance investigation on the battery thermal management system based on S-CO 2 immersion cooling[J ] . Energy, 2025, 318: 134656. DOI:10.1016/j.energy.2025.134656.
LUO Y H, QIU X H, REN J S, et al. A channel with hybrid twisted tapes for immersion cooling battery thermal management system[J]. Journal of Energy Storage, 2024, 95: 112588. DOI:10.1016/j.est.2024.112588.
HUSSAIN M, KHAN M K, PATHAK M. Thermal management of high-energy lithium titanate oxide batteries using an effective channeled dielectric fluid immersion cooling system[J]. Energy Conversion and Management, 2024, 313: 118644. DOI:10.1016/j.enconman.2024.118644.
YOU N, CHINNASAMY V, LEE M, et al. Correlation analysis between design parameters and cooling performance in 21700 battery module using immersion cooling[J]. Thermal Science and Engineering Progress, 2025, 68: 104368. DOI:10.1016/j.tsep.2025.104368.
BANERJEE R, NIDHUL K. Effect of various dielectric fluids on temperature homogeneity of Li-ion battery pack in an energy efficient novel immersion cooling design[J]. Results in Engineering, 2025, 26: 104688. DOI:10.1016/j.rineng.2025.104688.
LI W L, WANG Y W, HE B, et al. Influence of structural parameters on immersion cooling performance of a 1P52S 280 Ah prismatic LiFePO 4 battery pack[J ] . Applied Thermal Engineering, 2025, 261: 125185. DOI:10.1016/j.applthermaleng. 2024.125185.
JEDARI SALEHZADEH F, HEYHAT M M. Direct and indirect cooling of lithium-ion batteries with new manifold designs[J]. Thermal Science and Engineering Progress, 2025, 68: 104325. DOI:10.1016/j.tsep.2025.104325.
ZHOU R T, LUO Y H, ZHU C L, et al. Channel design for immersed battery thermal management system based on 3D topology optimization[J]. International Journal of Heat and Mass Transfer, 2026, 256: 128050. DOI:10.1016/j.ijheatmasstransfer. 2025.128050.
HU H S, XU J X, LI J Y, et al. Immersion coupled direct cooling with non-uniform cooling pipes for efficient lithium-ion battery thermal management[J]. Journal of Energy Storage, 2025, 116: 116010. DOI:10.1016/j.est.2025.116010.
SURESH PATIL M, SEO J H, LEE M Y. A novel dielectric fluid immersion cooling technology for Li-ion battery thermal management[J]. Energy Conversion and Management, 2021, 229: 113715. DOI:10.1016/j.enconman.2020.113715.
BAO R Q, WANG Z H, GAO Q J, et al. Dynamic-static composite immersion cooling for improving thermal equalization behavior in lithium-ion battery packs[J]. Energy, 2025, 330: 136774. DOI:10.1016/j.energy.2025.136774.
LI W H, LI A, YIN YUEN A C, et al. Optimisation of PCM passive cooling efficiency on lithium-ion batteries based on coupled CFD and ANN techniques[J]. Applied Thermal Engineering, 2025, 259: 124874. DOI:10.1016/j.applthermaleng.2024.124874.
LIU J H, FAN Y N, XIE Q M. Feasibility study of a novel oil-immersed battery cooling system: Experiments and theoretical analysis[J]. Applied Thermal Engineering, 2022, 208: 118251. DOI:10.1016/j.applthermaleng.2022.118251.
ZHONG K W, WANG C H, LUO Q Y, et al. Experimental study of a novel guided sequential immersion cooling system for battery thermal management[J]. Applied Thermal Engineering, 2024, 257: 124337. DOI:10.1016/j.applthermaleng.2024.124337.
MA R X, XUAN W C, JIANG Z K, et al. Natural convection characteristics of novel immersion liquid applied to battery thermal management in static mode[J]. Journal of Energy Storage, 2024, 101: 113927. DOI:10.1016/j.est.2024.113927.
LIU Q, LIU Y Y, ZHANG M J, et al. Comprehensive investigation of the electro-thermal performance and heat transfer mechanism of battery system under forced flow immersion cooling[J]. Energy, 2024, 298: 131404. DOI:10.1016/j.energy.2024.131404.
MO C M, YUEN A C Y, WU Y X, et al. Investigation on electro-thermal characteristics and heat transfer of immersion cooling for lithium-ion battery module at high-ambient temperature[J]. Journal of Power Sources, 2025, 645: 237238. DOI:10.1016/j.jpowsour.2025.237238.
WANG D, KONG D P, PING P, et al. Synthetic ester immersion cooling for lithium-ion batteries: A comparison of electro-thermal balancing under static and dynamic conditions and heat transfer analysis[J]. Journal of Energy Storage, 2026, 141: 119072. DOI:10.1016/j.est.2025.119072.
CHENG W M, CHEN M Y, OUYANG D X, et al. Investigation of the thermal performance and heat transfer characteristics of the lithium-ion battery module based on an oil-immersed cooling structure[J]. Journal of Energy Storage, 2024, 79: 110184. DOI:10.1016/j.est.2023.110184.
LIU X Y, LI Y, GAO S, et al. Suppression thermal runaway propagation of LiFePO 4 batteries during nail penetration test based on liquid immersion cooling[J ] . Energy, 2025, 330: 136973. DOI:10.1016/j.energy.2025.136973.
ZHAO L H, SONG G H, YANG X L, et al. Experiments on the effects of liquid immersion cooling on the thermal runaway (TR) behaviors of 280 Ah lithium-ion batteries subjected to different TR-triggering conditions[J]. Journal of Energy Storage, 2025, 121: 116358. DOI:10.1016/j.est.2025.116358.
LI J X, OU J R, ZENG S H, et al. Immersion cooling enabled thermal runaway prevention in overcharged batteries: Mechanisms and metrics[J]. Applied Energy, 2025, 401: 126798. DOI:10.1016/j.apenergy.2025.126798.
ZHANG Z D, SHENG L, ZHANG H J, et al. Thermal runaway avoidance via liquid-immersion for cylindrical lithium-ion batteries: Experimental characterizations[J ] . International Journal of Thermal Sciences, 2025, 217: 110047. DOI:10.1016/j.ijthermalsci.2025.110047.
LI X T, ZHOU Z Y, ZHANG M J, et al. A liquid cooling technology based on fluorocarbons for lithium-ion battery thermal safety[J]. Journal of Loss Prevention in the Process Industries, 2022, 78: 104818. DOI:10.1016/j.jlp.2022.104818.
BAI P X, XU R C, LIU M Y, et al. Thermal runaway characteristics of LFP batteries by immersion cooling[J]. ACS Applied Energy Materials, 2023, 6(13): 7205-7211.
SHENG L, LAN H Y, TAO B J, et al. Experiments on liquid-immersed thermal runaway management for large energy-stored lithium-ion battery modules[J]. Thermal Science and Engineering Progress, 2025, 68: 104347. DOI:10.1016/j.tsep.2025.104347.
LIANG C, LAI X, SHEN K, et al. Experimental study on immersion cooling for delaying thermal runaway propagation in lithium-ion battery modules[J]. Process Safety and Environmental Protection, 2026, 206: 108333. DOI:10.1016/j.psep.2025.108333.
HONG Y, JIN C Y, CHEN S Q, et al. Experimental study of the suppressing effect of the primary fire and thermal runaway propagation for electric bicycle batteries using flood cooling[J]. Journal of Cleaner Production, 2024, 435: 140392. DOI:10.1016/j.jclepro.2023.140392.
LI Y, BAI M L, ZHOU Z F, et al. Thermal management for the prismatic lithium-ion battery pack by immersion cooling with Fluorinated liquid[J]. Applied Thermal Engineering, 2024, 257: 124453. DOI:10.1016/j.applthermaleng.2024.124453.
WANG Y F, WU J T. Thermal performance predictions for an HFE-7000 direct flow boiling cooled battery thermal management system for electric vehicles[J]. Energy Conversion and Management, 2020, 207: 112569. DOI:10.1016/j.enconman.2020. 112569.
LI C E, WANG Y H, SUN Z W, et al. Two-phase immersion liquid cooling system for 4680 Li-ion battery thermal management[J]. Journal of Energy Storage, 2024, 97: 112952. DOI:10.1016/j.est.2024.112952.
FAN S M, DUAN F. A review of two-phase submerged boiling in thermal management of electronic cooling[J]. International Journal of Heat and Mass Transfer, 2020, 150: 119324. DOI:10.1016/j.ijheatmasstransfer.2020.119324.
ROHSENOW W M. A method of correlating heat-transfer data for surface boiling of liquids[J]. Journal of Fluids Engineering, 1952, 74(6): 969-975. DOI:10.1115/1.4015984.
ZUBER N. Hydrodynamic aspects of boiling heat transfer[D]. Los Angeles: University of California, 1959.
LI Y, BAI M L, ZHOU Z F, et al. Thermal management for the 18650 lithium-ion battery pack by immersion cooling with fluorinated liquid[J]. Journal of Energy Storage, 2023, 73: 109166. DOI:10.1016/j.est.2023.109166.
WANG Y H, LI C E, WEN X D, et al. Experimental studies on two-phase immersion liquid cooling for Li-ion battery thermal management[J]. Journal of Energy Storage, 2023, 72: 108748. DOI:10.1016/j.est.2023.108748.
LYU P Z, XIAO Y L, FAN X L, et al. Effect of battery surface microtopography on immersion boiling thermal management for lithium-ion batteries[J]. Renewable Energy, 2026, 256: 124258. DOI:10.1016/j.renene.2025.124258.
CHEN K, TANG A K, PAN J, et al. Experimental study on heat transfer characteristics and capillary-assisted enhancement of dual-phase immersion battery thermal management system[J]. Energy Conversion and Management, 2024, 322: 119149. DOI:10.1016/j.enconman.2024.119149.
ZHOU W B, MA H L, HU Y K, et al. Nucleate boiling enhancement of FC-72 on the carbon nanotube buckypaper for two-phase immersion cooling[J]. International Journal of Heat and Mass Transfer, 2024, 228: 125639. DOI:10.1016/j.ijheatmasstransfer.2024.125639.
理想汽车. 理想MEGA搭载的麒麟5C电池,到底有多牛?[EB/OL]. [2023-11-22]. https://www.lixiang.com/community/detail/article/10 06191.html.
TESLA. 特斯拉冷却系统总览[EB/OL]. [2026-01-17]. https://service.tesla.com/docs/Model3/ServiceManual/2024/zh-cn/GUID-20303222-BAF1-4E9B-B559-62A3286559DC.html.
张雅新, 张泉, 娄旭静, 等. 集装箱式储能电站两相冷板液冷系统的温控效果研究[J]. 储能科学与技术, 2024, 13(6): 1921-1928. DOI:10.19799/j.cnki.2095-4239.2024.0029.
ZHANG Y X, ZHANG Q, LOU X J, et al. Study on the temperature control effect of a two-phase cold plate liquid cooling system in a container energy storage power station[J]. Energy Storage Science and Technology, 2024, 13(6): 1921-1928. DOI:10.19799/j.cnki.2095-4239.2024.0029.
GSL ENERGY. GSL-bess80k208kwh / 261kwh / 418kwh liquid-cooled battery energy storage system(bess) | gsl energy[EB/OL]. [2025-07-03]. https://www.gsl-energy.com/gsl-bess80k208kwh-261kwh-418kwh-liquid-cooled-battery-energy-storage-system-bess.html.
REGERA. 800V battery pack[EB/OL]. [2026-01-30]. https://www.koenigsegg.com/800v-battery-pack.
FARADAY FUTURE. FARADAY future与mivolt (m&i materials)合作,独家推出全浸没式电池冷却系统[EB/OL]. [2020-12-02]. https://www.faradayfuturecn.com/cn/press-room/FF-partner-with-Mivolt.
TOTALENERGIES. Immersion cooled battery technology for electric vehicles | projects | ricardo[EB/OL]. [2020-12-01]. https://www.ricardo.com/en/projects/immersion-cooled-battery-technolo gy-for-electric-vehicles.
TOTALENERGIES. A world first: totalenergies lubrifiants integrated an immersion-cooled battery in the renault mégane e-tech[EB/OL]. [2025-03-03]. https://lubricants.totalenergies.com/news-press-releases/world-first-totalenergies-lubrifiants-integrated-immersion-cooled-battery.
中国南方电网有限责任公司. 全球首个浸没式液冷电池储能电站投入运行[EB/OL]. [2023-03-15]. http://www.sasac.gov.cn/n2588025/n2588124/c27454797/content.html.
0
浏览量
13
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010102001997号