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    Optimization Design and Numerical Study of Liquid-Cooling Structure for Cylindrical Lithium-Ion Battery Pack

    Source: Journal of Energy Engineering:;2021:;Volume ( 147 ):;issue: 004::page 04021017-1
    Author:
    Jiale Guo
    ,
    Fei Liu
    ,
    Yalong Xu
    ,
    Bing Han
    ,
    Meng Li
    DOI: 10.1061/(ASCE)EY.1943-7897.0000768
    Publisher: ASCE
    Abstract: Thermal management is of great significance to ensure that a battery pack works at a reasonable temperature and avoids thermal runaway. In this study, three different designs of liquid cooling-based lithium-ion battery modules with wavy tubes are proposed. A three-dimensional transient simulation of the designed structure is carried out. The effects of the coolant mass flow rate, separated dual tube structure, connection mode of adjacent tube lines (series mode and parallel mode), and coolant flow direction are discussed. The results show that increasing the mass flow rate of coolant in the range of 0–0.01  kg·s−1 can significantly reduce the maximum temperature of the battery module. On the contrary, the temperature difference increases markedly with the rise of the mass flow rate. Until the mass flow rate is greater than 0.006  kg·s−1, the temperature difference of the battery module changes less and stabilizes at 4.2°C–4.4°C. In addition, compared with the series mode, the parallel mode can improve the thermal performance of the battery module, especially in reducing the maximum temperature. The reverse flow of coolant on both sides of the battery with a separated dual tube structure can obtain the optimal cooling effect. This study provides a new way to optimize the cooling capacity of the thermal management system for a cylindrical lithium-ion battery module.
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      Optimization Design and Numerical Study of Liquid-Cooling Structure for Cylindrical Lithium-Ion Battery Pack

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4271264
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    contributor authorJiale Guo
    contributor authorFei Liu
    contributor authorYalong Xu
    contributor authorBing Han
    contributor authorMeng Li
    date accessioned2022-02-01T00:19:32Z
    date available2022-02-01T00:19:32Z
    date issued8/1/2021
    identifier other%28ASCE%29EY.1943-7897.0000768.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4271264
    description abstractThermal management is of great significance to ensure that a battery pack works at a reasonable temperature and avoids thermal runaway. In this study, three different designs of liquid cooling-based lithium-ion battery modules with wavy tubes are proposed. A three-dimensional transient simulation of the designed structure is carried out. The effects of the coolant mass flow rate, separated dual tube structure, connection mode of adjacent tube lines (series mode and parallel mode), and coolant flow direction are discussed. The results show that increasing the mass flow rate of coolant in the range of 0–0.01  kg·s−1 can significantly reduce the maximum temperature of the battery module. On the contrary, the temperature difference increases markedly with the rise of the mass flow rate. Until the mass flow rate is greater than 0.006  kg·s−1, the temperature difference of the battery module changes less and stabilizes at 4.2°C–4.4°C. In addition, compared with the series mode, the parallel mode can improve the thermal performance of the battery module, especially in reducing the maximum temperature. The reverse flow of coolant on both sides of the battery with a separated dual tube structure can obtain the optimal cooling effect. This study provides a new way to optimize the cooling capacity of the thermal management system for a cylindrical lithium-ion battery module.
    publisherASCE
    titleOptimization Design and Numerical Study of Liquid-Cooling Structure for Cylindrical Lithium-Ion Battery Pack
    typeJournal Paper
    journal volume147
    journal issue4
    journal titleJournal of Energy Engineering
    identifier doi10.1061/(ASCE)EY.1943-7897.0000768
    journal fristpage04021017-1
    journal lastpage04021017-11
    page11
    treeJournal of Energy Engineering:;2021:;Volume ( 147 ):;issue: 004
    contenttypeFulltext
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