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Experimental analysis of moisture transfer and phase change in porous insulation exposed to fire and its effect on heat transfer

机译:散热下多孔绝缘水分转移和相变的实验分析及其对热传递的影响

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摘要

Water vapour in porous building materials significantly affects the heat transfer. In addition to the regular humidity, materials, such as gypsum, release water vapour when they are heated, leading to a high resistivity to fire exposure. Although the heat and water vapour transfer through porous building materials at atmospheric conditions is well investigated, no data are available for the effective diffusion coefficient or velocity of the water vapour transfer when the structure is exposed to a thermal load or fire. For this purpose, fire resistance tests were carried out for gypsum/mineral wool constructions to determine the transient heating characteristic and water vapour transfer. It was found that for thin gypsum structures up to 2.5 cm the heating from ambient temperature to 65 °C is mainly caused by conduction. Further heating to 100 °C is related to the condensation of water vapour instead of thermal heat conduction. Furthermore, a significant decrease of the effective diffusion coefficient of water vapour in the mineral wool from 33.3 mm~2/s to 26.7 mm~2/s was determined during fire exposure. Based on the measurement the mean velocity of the water vapour transport was determined of being between 1 and 3 mm/s.
机译:多孔建筑材料中的水蒸气显着影响传热。除常规湿度外,材料如石膏,加热时释放水蒸气,导致火灾暴露的高电阻率。尽管通过大气条件下的多孔建筑材料的热量和水蒸气进入很好地研究,但是当结构暴露于热负荷或火灾时,没有用于水蒸气转移的有效扩散系数或速度的数据。为此目的,对石膏/矿棉结构进行耐火试验,以确定瞬态加热特性和水蒸气转移。发现,对于高达2.5cm的薄石膏结构,从环境温度到65℃的加热主要是由传导引起的。进一步加热至100℃与水蒸气的冷凝而不是热导热的凝结有关。此外,在火灾暴露期间测定矿棉中矿棉中水蒸汽的有效扩散系数的显着降低。基于测量,确定水蒸气传输的平均速度在1至3mm / s之间。

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