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Method of Optimisation for Ambient Temperature Cured Sustainable Geopolymers for 3D Printing Construction Applications

机译:用于3D打印建筑应用的环境温度固化可持续土工聚合物的优化方法

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摘要

Since the initial introduction of geopolymers, these materials have been characterised as environmentally-friendly sustainable substitutes for ordinary Portland cement (OPC). There is a routine increase in the application of geopolymers, especially in advanced technologies. Because of its better rheological characteristics compared to OPC, geopolymers are appropriate materials for extrusion-based 3D printing technologies. This paper focuses on the optimisation of an ambient temperature cured geopolymer for 3D printing construction applications. The effects of mixture parameters, including the type of hydroxide solution (HS), the type of silicate solution (SS) and the mass ratio of SS to HS on the workability, extrudability, shape retention ability and mechanical performance of different geopolymer mixtures were investigated. Accordingly, an optimum mixture was identified for geopolymers cured at ambient temperatures. Mechanical properties of the optimised mixture, including flexural and compressive strengths, were measured in different directions with respect to the printed layers. Further, uniaxial tension tests were also conducted on the optimised mixture to measure its interlayer bond strength. The results showed that among the activators investigated, the sodium-based activator composed of sodium hydroxide and sodium silicate solutions, with a SiO2/Na2O ratio of 3.22, was the most effective activator, providing appropriate workability and extrudability, along with reasonable strength and a high shape retention ability. The acquired mechanical properties exhibited anisotropic behaviour in different testing direction. The strength of the interlayer bond was found to be adequate to avoid interfacial shear failure.
机译:自从最初引入地质聚合物以来,这些材料就被认为是普通波特兰水泥(OPC)的环保可持续替代品。地聚合物的应用例行增加,特别是在先进技术中。由于其与OPC相比具有更好的流变性,因此地质聚合物是适合基于挤出的3D打印技术的材料。本文着重于为3D打印建筑应用优化环境温度固化的地质聚合物。研究了不同的混合参数,包括氢氧化物溶液的类型,硅酸盐溶液的类型,SS与HS的质量比对不同地质聚合物混合物的可加工性,可挤出性,形状保持能力和机械性能的影响。 。因此,确定了在环境温度下固化的地质聚合物的最佳混合物。在相对于印刷层的不同方向上测量了优化混合物的机械性能,包括抗弯强度和抗压强度。此外,还对优化的混合物进行了单轴拉伸试验,以测量其层间粘结强度。结果表明,在所研究的活化剂中,由SiO2 / Na2O比为3.22的氢氧化钠和硅酸钠溶液组成的钠基活化剂是最有效的活化剂,具有适当的可加工性和可挤出性,以及合理的强度和耐候性。高形状保持能力。所获得的机械性能在不同的测试方向上表现出各向异性。发现层间粘结的强度足以避免界面剪切破坏。

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