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Effect of modified wheat straw fiber on properties of fiber cement-based composites at high temperatures

机译:改良麦秸纤维对高温纤维水泥基复合材料性能的影响

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To solve the poor fireproof performance of plant fibers, one of the technical difficulties, and use more straw fibers as construction materials, wheat straw fibers (WSFs) have been subject to flame-retardant modification. Then, tests and analysis over the modified WSFs per the burning behavior and pyrolysis performance have been made. The physical and mechanical, and thermal insulation properties of wheat straw fiber cement-based composites (WSFCC) at high temperatures were characterized. The results are as follows: Ammonium polyphosphate (APP), magnesium hydroxide (MH), and aluminum hydroxide (ATH), three fire retardants, all affect the chemical structure of WSFs. P, Mg, and Al elements of the three retardants are successfully adsorbed onto the fibers' surface subject to modification. Flame-retardant WSFs significantly outperforms the non-flame-retardant ones per thermostability and flame retardancy. The heat release rate (HRR), total heat release (THR), effective heat of combustion (EHC), and mass loss rate (MLR) of most flame-retardant WSFs are obviously lower than those of non-flame-retardant ones. The APP-modified WSFs demonstrate higher total smoke production (TSP), while WSFs modified with composite flame retardants perform better in flame retardancy and smoke suppression. The MLR of WSFCC at high-temperature increases as the temperature goes higher. The compressive and flexural strengths of WSFCC decrease with the increase of temperature and the decrease mitigates after 350°C. In terms of thermal conductivity, composite-flame- retardant fiber WSFCC are much higher than non-flame-retardant fiber and APP-modified fiber WSFCC. As the temperature rises, the thermal conductivity of composite-flame- retardant fiber WSFCC tends to decrease.
机译:为解决植物纤维的良差差,其中一种技术困难,并使用更多的稻草作为建筑材料,小麦秸秆纤维(WSFS)受到阻燃性改性。然后,已经进行了每次燃烧行为和热解性能对修改的WSF的测试和分析。在高温下小麦秸秆纤维水泥基复合材料(WSFCC)的物理和机械和隔热性能。结果如下:多磷酸铵(APP),氢氧化镁(MH)和氢氧化铝(ATH),三种阻燃剂,所有这些都影响了WSF的化学结构。三次阻燃剂的P,Mg和Al元素成功被吸附在纤维表面上,以进行改性。阻燃性WSFs显着优于每个热稳定性和阻燃性的非阻燃剂。热释放速率(HRR),总热释放(THR),燃烧有效热量(EHC)和大多数阻燃性WSF的质量损失率(MLR)明显低于非阻燃剂。 APP改性的WSFS显示出较高的总烟雾生产(TSP),而用复合阻燃剂改性的WSF在阻燃性和烟雾抑制中更好地表现更好。随着温度更高,高温下的WSFCC的MLR增加。随着温度的增加,350℃后,WSFCC的抗压和弯曲强度随温度的增加和减少减少而降低。在导热系数方面,复合燃烧纤维WSFCC远高于非阻燃纤维和APP改性纤维WSFCC。随着温度升高,复合燃烧纤维WSFCC的导热率趋于降低。

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