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基于正交试验的偏高岭土地质聚合物的力学性能与微观结构表征

Mechanical Properties and Microstructural Characterization of Metakaolin Geopolymers Based on Orthogonal Tests.

作者信息

Dai Shoushuai, Wang Hongguang, An Shuai, Yuan Long

机构信息

School of Civil Engineering, Northeast Forestry University, Harbin 150040, China.

出版信息

Materials (Basel). 2022 Apr 18;15(8):2957. doi: 10.3390/ma15082957.

Abstract

Metakaolin was used as a raw material for the preparation of geopolymers, where two types of alkali activators (NaSiO + NaOH and NaSiO + NaOH) were used to prepare metakaolin geopolymers at room temperature. The mechanical properties and microstructures of the metakaolin geopolymers were analyzed. A three-factor, four-level orthogonal test was designed to investigate the mechanical properties of the metakaolin geopolymer with different ratios. The compressive and flexural strength of different specimens were tested for 7 and 28 days. Both the Na-based and K-based geopolymers exhibited excellent mechanical properties, but the K-based geopolymer had better mechanical properties. The optimal compressive strength and flexural strength of the K-based geopolymer were 73.93 MPa and 9.37 MPa, respectively. The 28-day optimal compressive strength of the Na-based polymer was 65.79 MPa, and the flexural strength was 8.71 MPa. SEM, XRD, and FTIR analyses showed that the mechanical properties of the geopolymers could be greatly improved by using a higher alkaline solution concentration, proper NaSiO/MOH mass ratio, and proper mass ratio of alkali exciter to metakaolin. Amorphous silicoaluminate was more favorable for the dissolution of silicon-alumina raw materials, promoted the formation of an amorphous silicoaluminate gel, and caused the internal structure of the geopolymer to be more compact.

摘要

偏高岭土被用作制备地质聚合物的原料,其中使用两种类型的碱激发剂(硅酸钠+氢氧化钠和硅酸钾+氢氧化钾)在室温下制备偏高岭土地质聚合物。对偏高岭土地质聚合物的力学性能和微观结构进行了分析。设计了一个三因素、四水平的正交试验来研究不同配比的偏高岭土地质聚合物的力学性能。对不同试样的抗压强度和抗折强度进行了7天和28天的测试。钠基地质聚合物和钾基地质聚合物均表现出优异的力学性能,但钾基地质聚合物的力学性能更好。钾基地质聚合物的最佳抗压强度和抗折强度分别为73.93MPa和9.37MPa。钠基地质聚合物的28天最佳抗压强度为65.79MPa,抗折强度为8.71MPa。扫描电子显微镜(SEM)、X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)分析表明,通过使用较高的碱性溶液浓度、合适的硅酸钠/金属氢氧化物质量比以及合适的碱激发剂与偏高岭土的质量比,可以大大提高地质聚合物的力学性能。无定形硅铝酸盐更有利于硅铝原料的溶解,促进无定形硅铝酸盐凝胶的形成,并使地质聚合物的内部结构更加致密。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/947e/9030422/4151d3abd7a1/materials-15-02957-g001.jpg

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