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Microstructure Studies on the Effect of the Alkaline Activators of Fly Ash-Based Geopolymer at Elevated Heat Treatment Temperature

机译:微观结构研究粉煤灰基地质聚合物碱性活化剂在高温处理温度下的影响

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Fly ash-based geopolymers are new binding materials produced to replace the ordinary Portland cement (OPC) used in concrete. In this research, the effect of alkaline activators on the compressive strength and the microstructure of low-calcium (Class F) fly ash-based geopolymers were studied. Fly ash and the alkaline activator were mixed with alkaline activator to fly ash ratios of 0.30, 0.35, and 0.40 at a constant ratio of water glass (sodium silicate) to sodium hydroxide (NaOH). The alkaline activator solution was prepared by mixing water glass with a 15 M NaOH solution. The samples were cured at a temperature 70°C for 24 hr and maintained at room temperature until the testing was conducted. The test results indicated that the compressive strength increased when the ratio of alkaline activator to fly ash was increased at 7 days. The ratio of 0.4 produced the maximum compressive strength, which was 8.61 MPa. This was due to high reaction rate between the fly ash and the alkaline activator solution. Morphology studies, conducted by SEM analysis of the geopolymer samples, indicated that geopolymers synthesized at a ratio of 0.4 also had the most homogeneous and less porous microstructures, which was attributed to the high dissolution of the fly ash particles in the alkaline activator solution. The microstructure appearance of geopolymers treated heat temperature of 400, 600 and 800°C, shows a sintering process takes place for unreacted fly ash microspheres. It was observed as an overall, the visible microcracks formed on the surface of the highest compressive strength geopolymers only, was due to loss of water during heating.
机译:粉煤灰的地质聚合物是制造的新型装订材料,以取代混凝土中使用的普通波特兰水泥(OPC)。在该研究中,研究了碱性活化剂对低钙(F)粉煤灰基地质聚合物的抗压强度和微观结构的影响。将粉煤灰和碱化活化剂与碱性活化剂混合,以恒定比例为0.30,0.35和0.40的灰分量(硅酸钠)至氢氧化钠(NaOH)。通过将水玻璃与15M NaOH溶液混合制备碱性活化剂溶液。将样品在70℃的温度下固化24小时并在室温下保持直至进行测试。测试结果表明,当碱活化剂与粉煤灰的比例在7天内增加时,抗压强度增加。 0.4的比例产生的最大抗压强度为8.61MPa。这是由于粉煤灰和碱性活化剂溶液之间的高反应速率。通过SEM分析来进行地质聚合物样品进行的形态学研究表明,以0.4的比例合成的地质聚合物也具有最均匀且多孔的微观结构,其归因于碱活化剂溶液中的粉煤灰颗粒的高溶解。 Geo聚合物的微观结构外观为400,600和800℃的热温度,显示出未反应的粉煤灰微球的烧结过程。它被认为是整体的,仅在最高压缩强度地质聚合物的表面上形成的可见微裂纹是由于加热过程中的水损失。

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