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Effect of Curing Conditions on the Mechanical Properties of Fly Ash-Based Geopolymer Without Sodium Silicate Solution

机译:固化条件对没有硅酸钠溶液的粉煤灰基地质聚合物机械性能的影响

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Geopolymer is associated with the alkali activation of materials rich in Si and Al, and alkali activator such as sodium hydroxide is used for the dissolution of raw material with the addition of sodium silicate solution to increase the dissolution process. However, the trend of strength development of geopolymer using sodium hydroxide alone is not well established. This paper presents an evaluation on compressive strength of fly ash–based geopolymer by varying curing time with respect to different curing temperature using sodium hydroxide as the only activator. The samples were cured at room temperature and at an elevated temperature (60oC). Further analysis on the microstructure of geopolymer products cured at 60oC was carried out using Field Emission Scanning Microscopy (FESEM). It can be observed that the compressive strength increased as the curing time increased when cured at room temperature; whereas at elevated temperature, the strength increased up to a maximum 65.28 MPa at 14 days but gradually decreased at longer curing time. Better compressive strength can be obtained when the geopolymer was cured at an elevated temperature compared to curing at room temperature.
机译:地质聚合物与富含Si和Al的材料的碱活化相关,并且碱化活化剂如氢氧化钠用于加入硅酸钠溶液的原料溶解以增加溶解过程。然而,单独使用氢氧化钠的地质多聚合物的力量发展的趋势不是很好的。本文介绍了使用氢氧化钠作为唯一活化剂的不同固化温度的粉煤灰基地质聚合物的抗压强度评价。将样品在室温下和升高的温度(60℃)固化。使用现场发射扫描显微镜(FESEM)进行在60oC下固化的地缘聚合物产物的微观结构的进一步分析。可以观察到,随着在室温下固化时的固化时间增加,压缩强度增加;虽然在升高的温度下,但在14天的温度下增加至最大65.28MPa,但在较长的固化时间下逐渐降低。与在室温下固化时,在升高的温度下固化地质聚合物时,可以获得更好的抗压强度。

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