织物变形对圆柱型服装热防护性能的影响

Yun Su, Rui Li, Jie Yang, G. Song, Chunhui Xiang, Jun Li
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引用次数: 2

摘要

消防防护服是为消防队员在灭火或救援行动中提供热防护而设计的。然而,由于人体运动和不同的姿势,织物的变形和拉伸会改变服装的热防护性能。目前我们在织物变形方面的知识差距往往导致对个人防护装备(PPE)所能提供的热防护水平的预测存在偏差,这凸显了我们需要提高对这一领域的理解。在这项研究中,我们开发了一种可以连接到圆柱形铜量热计的装置,以模拟人体运动和不同姿势引起的织物变形,同时测量织物的热性能。应用不同大小的拉伸力(0,1.2,2.1和3.1 psi)来研究织物变形对低强度和高强度热暴露下服装热防护性能的影响。此外,我们还分析了不同拉伸力和织物性能下的皮肤烧伤时间。选择的织物在3.1 psi的拉伸力下拉伸约15%。织物变形导致织物的预估热防护性能显著降低,主要是由于织物厚度、孔隙率和单位面积质量的变化。随着拉伸力的增加,预测的皮肤烧伤时间会减少,尽管由于织物收缩和降解,在高强度热暴露下减少的幅度不太明显。这项研究的结果进一步推进了我们目前对服装热防护性能的理解,并可能导致开发一种新的测试,以在更实际的使用情况下表征服装的性能。
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Effect of Fabric Deformation on Thermal Protective Performance of Clothing in a Cylindrical Configuration
Firefighting protective clothing is designed to provide thermal protection for firefighters in fire extinguishing or rescuing operations. However, fabric deformation and stretching due to body movement and different postures could change the clothing's thermal protective performance. Current gaps in our knowledge with regard to fabric deformation often resulted in biased predictions of the thermal protective level that personal protective equipment (PPE) can provide, highlighting the need to improve our understanding in this field. In this study, we developed a device that can be connected to a cylindrical copper calorimeter to simulate fabric deformation due to body movement and different postures and simultaneously measure the fabric's thermal properties. Stretching forces of varying magnitudes (of 0, 1.2, 2.1, and 3.1 psi) were applied to study the effect of fabric deformation on the thermal protective performance of clothing under lowand high-intensity heat exposures. In addition, we analyzed skin burn times with different stretching forces and fabric properties. The selected fabrics were stretched by approximately 15 % under a stretching force of 3.1 psi. Fabric deformation led to a significant reduction of the predicted thermal protective performance of fabrics, mainly due to changes in fabric thickness, porosity, and mass per unit area. Predicted skin burn times decreased for increasing stretching forces, although the decrease was less pronounced under high-intensity heat exposure as a result of fabric shrinkage and degradation. The findings from this study further advance our current understanding of the thermal protective performance of clothing and may lead to the development of a new test to characterize clothing performance under more realistic usage situations.
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