4.8 Review

Advanced thermal management system driven by phase change materials for power lithium-ion batteries: A review

Journal

RENEWABLE & SUSTAINABLE ENERGY REVIEWS
Volume 159, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.rser.2022.112207

Keywords

Lithium-ion power batteries; Thermal safety; Thermal management; Phase change materials; Hybrid cooling system; Preheating system

Funding

  1. Guangdong Key Labora-tory of Battery Safety [2019B121203008]
  2. National Nat-ural Science Foundation of China [51906047, 21875046, 51803036, 2020-RLWK12-10349, 2020MK127]

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This article discusses the thermal safety issues faced by lithium-ion batteries in electric vehicles and hybrid electric vehicles. It introduces the phase change material-based cooling method and points out the problem of low thermal conductivity in practical applications. By studying the heat generation and transfer mechanisms of lithium-ion batteries, the thermal conductivity, structural stability, and flame retardancy of phase change materials are analyzed, and solutions are proposed. The challenges and future directions of phase change material-based battery thermal management systems are also discussed.
Power lithium-ion batteries are widely utilized in electric vehicles (EVs) and hybrid electric vehicles (HEVs) for their high energy densities and long service-life. However, thermal safety problems mainly resulting from thermal runaway (TR) must be solved. In general, temperature directly influences the performance of lithium-ion batteries. Hence, an efficient thermal management system is very necessary for battery modules/packs. One particular approach, phase change material (PCM)-based cooling, has exhibited promising applicability due to prominent controlling-temperature and stretching-temperature capacities. However, poor thermal conductivity performance, as the main technical bottleneck, is limiting the practical application. Nevertheless, only promoting the thermal conductivity is far from enough considering the practical application in EVs/HEVs. To fix these flaws, firstly, the heat generation/transfer mechanisms of lithium-ion power batteries were macro-and microscopically reviewed. Following that, the thermal conductivity, structural stability, and flame retardancy of PCM are thoroughly discussed, to which solutions to the aforementioned performances are systematically reviewed. In addition, battery thermal management system (BTMS) employing PCM is illustrated and compared. Eventually, the existing challenges and future directions of PCM-based BTMS are discussed. In summary, this review presents effective approaches to upgrade the PCM performances for high-density lithium-ion BTMS. These strategies furtherly accelerate the commercialization process of PCM BTMS.

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