Flexible phase change materials obtained from a simple solvent-evaporation method for battery thermal management

2021 ◽  
Vol 44 ◽  
pp. 103447
Author(s):  
Shaojun Li ◽  
Xinlong Dong ◽  
Xiaodong Lin ◽  
Dan Shao ◽  
Guoqing Zhang ◽  
...  
Author(s):  
Thomas B. Freeman ◽  
Kaloki Nabutola ◽  
David Spitzer ◽  
Patrick N. Currier ◽  
Sandra K. S. Boetcher

Phase-change materials (PCMs) are a useful alternative to more traditional methods of thermal management of Li-ion batteries in electric or hybrid-electric vehicles. PCMs are materials which absorb large amounts of latent heat and undergo solid-to-liquid phase change at near-constant temperature. The goal of the research is to experimentally investigate the thermal properties of a novel shape-stabilized PCM/HDPE composite extruded filament. The extruded filament can then be used in a 3D printer for custom PCM/HDPE shapes. The PCM used in the study is PureTemp PCM 42, which is an organic-based material that melts around 42° C. Four PCM/HDPE mixtures were investigated (all percentages by mass): 20/80, 30/70, 40/60, and 50/50. Preliminary findings include differential scanning calorimeter (DSC) measurements of melting temperature and latent heat as well as scanning electron microscope (SEM) pictures of filament composition.


Materials ◽  
2020 ◽  
Vol 13 (20) ◽  
pp. 4622 ◽  
Author(s):  
Changcheng Liu ◽  
Dengji Xu ◽  
Jingwen Weng ◽  
Shujia Zhou ◽  
Wenjuan Li ◽  
...  

The purpose of a battery thermal management system (BTMS) is to maintain the battery safety and efficient use as well as ensure the battery temperature is within the safe operating range. The traditional air-cooling-based BTMS not only needs extra power, but it could also not meet the demand of new lithium-ion battery (LIB) packs with high energy density, while liquid cooling BTMS requires complex devices to ensure the effect. Therefore, phase change materials (PCMs)-based BTMS is becoming the trend. By using PCMs to absorb heat, the temperature of a battery pack could be kept within the normal operating range for a long time without using any external power. PCMs could greatly improve the heat dissipation efficiency of BTMS by combining with fillers such as expanded graphite (EG) and metal foam for their high thermal conductivity or coordinating with fins. In addition, PCMs could also be applied in construction materials, solar thermal recovery, textiles and other fields. Herein, a comprehensive review of the PCMs applied in thermal storage devices, especially in BTMS, is provided. In this work, the literature concerning current issues have been reviewed and summarized, while the key challenges of PCM application have been pointed out. This review may bring new insights to the PCM application.


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