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Study of Industrial Grade Thermal Insulation at Elevated Temperatures

机译:高温电气级保温研究

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摘要

Thermal insulation is used for preventing heat losses or heat gains in various applications. In industries that process combustible products, inorganic-materials-based thermal insulation may, if proven sufficiently heat resistant, also provide heat protection in fire incidents. The present study investigated the performance and breakdown temperature of industrial thermal insulation exposed to temperatures up to 1200 °C, i.e., temperatures associated with severe hydrocarbon fires. The thermal insulation properties were investigated using thermogravimetric analysis (TGA), differential scanning calorimetry (DSC) and by heating 50 mm cubes in a muffle furnace to temperatures in the range of 600 to 1200 °C with a 30 min holding time. The room temperature thermal conductivity was also recorded after each heat treatment. Upon heating, the mineral-based oil dust binder was released at temperatures in the range of 300 to 500 °C, while the Bakelite binder was released at temperatures in the range of 850 to 960 °C. The 50 mm test cubes experienced increasing levels of sintering in the temperature range of 700 to 1100 °C. At temperatures above 1100 °C, the thermal insulation started degrading significantly. Due to being heat-treated to 1200 °C, the test specimen morphology was similar to a slightly porous rock and the original density of 140 kg/m3 increased to 1700 kg/m3. Similarly, the room temperature thermal conductivity increased from 0.041 to 0.22 W/m∙K. The DSC analysis confirmed an endothermic peak at about 1200 °C, indicating melting, which explained the increase in density and thermal conductivity. Recently, 350 kW/m2 has been set as a test target heat flux, i.e., corresponding to an adiabatic temperature of 1200 °C. If a thin layer of thermally robust insulation is placed at the heat-exposed side, the studied thermal insulation may provide significant passive fire protection, even when exposed to heat fluxes up to 350 kW/m2. It is suggested that this is further analysed in future studies.
机译:热绝缘用于防止各种应用中的热损失或热量增益。在加工可燃产物的行业中,基于无机材料的绝热可能,如果被证明充分耐热,也可以在火灾事故中提供热量保护。本研究研究了暴露于高达1200°C的温度的工业绝热性能和击穿温度,即与严重烃火灾相关的温度。使用热重分析(TGA),差示扫描量热法(DSC)和将50mm立方体加热到Muffle炉中的温度,以600至1200℃的温度,30分钟保持时间,以600至1200℃的温度进行研究。每次热处理后也记录室温导热率。在加热时,矿物型油粉粘合剂在300至500℃的温度下释放,而扶手粘合剂在850至960℃的温度下释放。 50毫米的测试立方体在700至1100°C的温度范围内经历了增加的烧结水平。在高于1100°C的温度下,热绝缘开始显着降低。由于热处理至1200℃,试样形态与略微多孔的岩石类似,140kg / m 3的原始密度增加至1700kg / m 3。类似地,室温导热率从0.041增加到0.22W /m≥K。 DSC分析证实了约1200℃的吸热峰,表明熔化,这解释了密度和导热率的增加。最近,350 kW / m2被设定为测试目标热通量,即对应于1200℃的绝热温度。如果在热暴露的侧面放置薄的热鲁棒绝缘层,则研究的热绝缘可以提供显着的被动防火,即使暴露于高达350kW / m2的热通量也是如此。建议在未来的研究中进一步分析了这一点。

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