相变材料消防手套热防护建模与分析。

Susan S Xu, Jonisha Pollard, Weihuan Zhao
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引用次数: 0

摘要

消防员因烧伤和热应激造成的伤害约占每年伤害总数的5%-10%。手套是消防队员出勤装备中最薄/最弱的部件,它可能使消防队员在呼救时手腕和手有严重烧伤的危险。烧伤可以迅速发生,提高消防员手套的热防护性能将防止这些烧伤。通过COMSOL Multiphysics软件进行一维(1D)传热建模和仿真,研究将相变材料(PCM)层集成到传统结构消防手套中对热防护性能的改善。参数研究探讨了PCM热性能、层厚度和手套结构位置对手部保护的影响。结果表明,密度、比热和熔合潜热越高,PCM的热容和热惯性越大,热防护性能越好。PCM的最佳熔点为80℃~ 140℃。厚度为0.5 mm-1.0 mm的PCM层具有良好的热防护效果。在高温情况下,PCM层的位置应靠近手套内表面。总体而言,建模表明,添加PCM层可以显着增强消防员手套的热防护性能,结果显示,与没有PCM的传统手套相比,皮肤达到二度烧伤温度的时间增加(2-4倍)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Modeling and Analyzing for Thermal Protection of Firefighters' Glove by Phase Change Material.

Modeling and Analyzing for Thermal Protection of Firefighters' Glove by Phase Change Material.

Modeling and Analyzing for Thermal Protection of Firefighters' Glove by Phase Change Material.

Modeling and Analyzing for Thermal Protection of Firefighters' Glove by Phase Change Material.

Firefighter injures caused by burns and thermal stress occupies around 5%-10% of the total injuries annually. Glove is the thinnest/weakest components among the firefighter turnout gear, which can put firefighters, are at risk of severe wrist and hand burns during fire calls. Burns can occur quickly and enhancing the thermal protective performance of firefighters' gloves will prevent these burns. One-dimensional (1D) heat transfer modeling and simulations were performed through the COMSOL Multiphysics software to investigate the improvement of thermal protective performance when integrating a Phase Change Material (PCM) layer into a conventional structural firefighting glove. Parametric studies were conducted to explore the effects of PCM thermal properties, layer thickness, and location in glove structure on hand protection. It was found that a PCM with a higher density, specific heat, and latent heat of fusion had a larger heat capacity and thermal inertia, resulting in better thermal protective performance. The optimum melting point of PCM was found to be in the range of 80°C-140°C. A PCM layer with a thickness of 0.5 mm-1.0 mm showed sufficient thermal protection. The location of the PCM layer should be close to the inner glove surface for high-heat situations. Overall, modeling suggests that the addition of a PCM layer could significantly enhance the thermal protective performance of firefighters' gloves, with results showing increased time (2-4 times as long) for skin to reach second-degree burn temperature when compared to the conventional glove without PCM.

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