Jawad Naeem, A. Mazari, Z. Kůs, A. Havelka, Mohamed Abdelkader
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引用次数: 0
摘要
本研究的目的是预测涂银消防员防护服在外部辐射热流作用下不同位置的温度分布。这将有助于确定热防护性能。消防员服装由三层组成,即外壳、防潮层和隔热衬里。外壳是暴露在外的表面,它通过一种称为磁控溅射的物理气相沉积工艺镀上银颗粒。然后,按照 ISO 6942 标准,将这些未涂层和银涂层样品暴露在 10 kW/m2 的辐射传热设备中。银涂层样品的热保护性能更好,因为银涂层样品的温度上升速度减慢。随后,考虑到金属涂层对外壳的影响,采用了数值方法。利用有限差分法求解偏微分方程,利用隐含法离散偏微分方程。数值模型很好地预测了不同节点处温度随时间的分布。通过比较数值解法获得的未涂层和银涂层样品不同节点处的时间与温度曲线图,显示出与实验结果相似的模式。
Implementation of Numerical Model for Prediction of Temperature Distribution for Metallic-Coated Firefighter Protective Clothing
The aim of this study is to predict the distribution of temperature at various positions on silver-coated firefighter protective clothing when subjected to external radiant heat flux. This will be helpful in the determination of thermal protective performance. Firefighter clothing consists of three layers, i.e., the outer shell, moisture barrier and thermal liner. The outer shell is the exposed surface, which was coated with silver particles through a physical vapor deposition process called magnetron sputtering. Afterwards, these uncoated and silver-coated samples were exposed to radiant heat transmission equipment at 10 kW/m2 as per the ISO 6942 standard. Silver-coated samples displayed better thermal protective performance as the rate of temperature rise in silver-coated samples slowed. Later, a numerical approach was employed, contemplating the impact of metallic coating on the exterior shell. The finite difference method was utilized for solving partial differential equations and the implicit method was employed to discretize the partial differential equations. The numerical model displayed a good prediction of the distribution of temperature at different nodes with respect to time. The comparison of time vs. temperature graphs at different nodes for uncoated and silver-coated samples acquired from numerical solutions showed similar patterns, as witnessed in the experimental results.