吉林大学学报(工学版) ›› 2018, Vol. 48 ›› Issue (2): 387-397.doi: 10.13229/j.cnki.jdxbgxb20161252
张天时1, 2, 宋东鉴2, 高青1, 2, 王国华1, 2, 闫振敏2, 宋薇1, 2
ZHANG Tian-shi1, 2, SONG Dong-jian2, GAO Qing1, 2, WANG Guo-hua1, 2, YAN Zhen-min2, SONG Wei1, 2
摘要: 为保障电动汽车电池组较佳的工作温度,提出一种热泵辅助液体循环电池冷却系统,并利用理论和实验表征方法基于MATLAB平台建立各构件模型。计算结果表明,该冷却系统能够满足电池高温高负荷冷却需求,其中热泵辅助冷却作用明显。同时,通过一维计算初步分析表明,电池散热器前置于冷凝器的布置形式相比后置形式具备更好的电池冷却换热效果。此外,在行驶工况下,电池冷却过程中水泵液流量的作用相比风扇更加敏感,在高温高负荷工况下应以水泵调节为主。
中图分类号:
[1] Kizilel R, Sabbah R, Selman J R, et al. An alternative cooling system to enhance the safety of Li-ion battery packs[J]. Journal of Power Sources, 2009, 194(2):1105-1112. [2] Kawamura T, Kimura A,Egashira M, et al. Thermal stability of alkyl carbonate mixed-solvent electrolytes for lithium ion cells[J]. Journal of Power Sources, 2002, 104(2):260-264. [3] 秦大同, 梁昌杰, 杨亚联,等. 混合动力汽车用镍氢电池组散热性能仿真与试验[J]. 中国公路学报, 2010, 23(5):107-112. Qin Da-tong, Liang Chang-jie, Yang Ya-lian, et al.Simulation and experiment on heat dissipation property of nickel-metal hydride battery package in hybride electric vehicle [J]. China Journal of Highway and Transport, 2010, 23(5): 107-112. [4] 王庆年, 段本明, 王鹏宇,等. 插电式混合动力汽车动力传动系参数优化[J]. 吉林大学学报:工学版, 2017, 47(1):1-7. Wang Qing-nian, Duan Ben-ming, Wang Peng-yu,et al.Optimization of powertrain transmission parameters of plug-in hybrid electric vehicle[J]. Journal of Jilin University(Engineering and Technology Edition), 2017, 47(1):1-7. [5] Shahidinejad S, Bibeau E, Filizadeh S. Design and simulation of a thermal management system for plug-in electric vehicles in cold climates[C]∥ SAE Paper,2012-01-0118. [6] Nelson P, Dees D, Amine K, et al. Modeling thermal management of lithium-ion PNGV batteries[J]. Journal of Power Sources, 2002, 110(2):349-356. [7] Wu M S, Liu K H, Wang Y Y, et al. Heat dissipation design for lithium-ion batteries[J]. Journal of Power Sources, 2002, 109(1):160-166. [8] Chen D, Jiang J, Kim G H, et al. Comparison of different cooling methods for lithium ion battery cells[J]. Applied Thermal Engineering,2016, 94:846-854. [9] Hosoz M, Direk M. Performance evaluation of an integrated automotive air conditioning and heat pump system[J]. Energy Conversion & Management, 2006, 47(5):545-559. [10] Zhang T, Gao C, Gao Q, et al. Status and development of electric vehicle integrated thermal management from BTM to HVAC[J]. Applied Thermal Engineering, 2015, 88:398-409. [11] Pendergast D R, Demauro E P, Fletcher M, et al. A rechargeable lithium-ion battery module for underwater use[J]. Journal of Power Sources, 2011, 196(2):793-800. [12] Lee K H, Cha H R, Kim Y B. Development of an interior permanent magnet motor through rotor cooling for electric vehicles[J]. Applied Thermal Engineering, 2016, 95:348-356. [13] Jarrett A, Kim I Y. Design optimization of electric vehicle battery cooling plates for thermal performance[J]. Journal of Power Sources, 2011, 196(23):10359-10368. [14] Bernardi D, Pawlikowski E, Newman J. A general energy balance for battery systems[J]. Journal of the Electrochemical Society, 1984, 132(1):5-12. [15] 许超.混合动力客车电池包散热系统研究[D].上海:上海交通大学车辆工程系,2010. Xu Chao. Research of cooling system of battery pack on hybrid electric bus[D]. Shanghai: Department of Vehicle Engineering, Shanghai Jiaotong University, 2010. [16] Sato N. Thermal behavior analysis of lithium-ion batteries for electric and hybrid vehicles[J]. Journal of Power Sources, 2000, 99(1/2):70-77. [17] 余志生.汽车理论[M].北京:机械工业出版社, 2006. [18] Cowell T A,Heikal M R, Achaichia A. Flow and heat transfer in compact louvered fin surfaces[J]. Experimental Thermal & Fluid Science, 1995, 10(2):192-199. [19] Mujumdar P A. Handbook of single-phase convective heat transfer[J]. Drying Technology, 1987, 7(1):149-150. [20] Park C,Jaura A K. Dynamic thermal model of Li-ion battery for predictive behavior in hybrid and fuel cell vehicles[J]. SAE Transactions, 2003, 112:1835-1842. [21] Mahamud R, Park C. Reciprocating air flow for Li-ion battery thermal management to improve temperature uniformity[J]. Journal of Power Sources, 2011, 196(13):5685-5696. [22] Hsieh Y Y, Lin T F. Saturated flow boiling heat transfer and pressure drop of refrigerant R-410A in a vertical plate heat exchanger[J]. International Journal of Heat & Mass Transfer, 2002, 45(5):1033-1044. [23] Yan Y Y, Lin T F, Yang B C. Evaporation heat transfer and pressure drop of refrigerant R134a in a plate heat exchanger[C]∥ ASME 1997 Turbo Asia Conference, Singapore,1997:V001T13A024-V001 T13A024. |
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