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Effect of high temperature on the microstructural evolution of fiber reinforced geopolymer composite

机译:高温对纤维增强地质聚合物复合材料微观结构演变的影响

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摘要

Physical evolution of geopolymeric minerals derived from metakaolin and synthesized with sodium, mixed-alkali and potassium activating solutions (Na- K) during thermal exposure. The geopolymer composites were prepared with 40 V% of fiber reinforcement such as carbon, E-glass, and basalt at the direction of in plain. Fiber reinforced geopolymer composites were exposed to the room and elevated temperatures inside the oven at air medium for a period of 30 min. The durability of the composites and internal structures with surface microstructures were examined after high temperature exposures. According to the results, geopolymer implied a prominent influence on the thermal shrinkage with the increasing of Si/Al ratios. This was attributed to the densification caused by reduction in porosity during dehydroxylation and sintering. In the case of carbon fiber reinforced composite shows transition in strength after 600 °C due to the oxide protective layer that increases the flexural strength and toughness of the composite. The flexural strength of the carbon reinforced composite increases from 17.8 to 55.8 MPa at 1000 °C. Whereas, E-glass reinforced composite shows expansion in a matrix with cage like structure helps in the sliding mechanism of fiber within the matrix, thus strength reduces towards high temperature. In case of basalt reinforces composite complete conversions into a ceramic like structure after exposure to high temperature. As a result, the crystalline nature of ceramic assists in toughened the composite structure with a brittle nature.
机译:在热暴露过程中,由偏高岭土衍生并与钠,混合碱和钾活化溶液(Na-K​​)合成的地聚合物矿物的物理演化。地质聚合物复合材料在平面方向上以40 V%的纤维增强材料(例如碳,E-玻璃和玄武岩)制备。将纤维增强的地质聚合物复合材料暴露于室内,并在空气介质中的烘箱内升高温度30分钟。高温暴露后,检查了复合材料和具有表面微结构的内部结构的耐久性。根据结果​​,随着Si / Al比的增加,地聚合物对热收缩产生了显着影响。这归因于在脱羟基和烧结过程中孔隙率降低引起的致密化。在碳纤维增强复合材料的情况下,由于氧化物保护层增加了复合材料的抗弯强度和韧性,在600°C后强度表现出转变。碳增强复合材料的抗弯强度在1000°C时从17.8 MPa增加到55.8 MPa。然而,E-玻璃纤维增​​强复合材料显示出具有笼状结构的基质中的膨胀有助于纤维在基质内的滑动机理,因此强度降低了对高温的影响。在玄武岩增强的情况下,复合材料在暴露于高温后会完全转变成类似陶瓷的结构。结果,陶瓷的结晶性质有助于使复合结构变脆。

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