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Development of expansive soil geopolymer binders for use in waste containment facility

机译:膨胀土壤地缘聚合物粘合剂的开发用于废物遏制设施

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Waste containment facilities require liners and covers for safe waste disposal, which can be efficiently achieved using robust green technologies. In the present study, a systematic approach was adopted towards the development of reliable expansive soil geopolymers suitable for waste containment application. Various factors that influence geopolymerisation were considered including the precursor type (P-T), precursor content, liquid alkali hydroxide type (L-T), activator-to-precursor ratio (A/P) and method of preparation. Multiresponse optimisation for permeability, volumetric shrinkage and unconfined compressive strength was executed to achieve soil geopolymers that satisfy the regulatory requirement as hydraulic barrier materials. This was done using a robust experimental design and the utility concept to prescribe a framework for achieving reliable soil geopolymers. The results obtained show that significant interactions between the factors (P(T)xL(T)) and (P(T)xA/P) affected the response characteristics and consequently the soil geopolymer performance. The aptness of the multiresponse optimisation was confirmed at 95% confidence interval, which revealed that the developed soil geopolymers can be used in waste containment facility under certain conditions. Evidence of the geopolymerisation process was clarified using microstructural analyses. Scanning electron microscopy and energy-dispersive spectroscopy supported the formation of N-A-S-H and K-A-S-H gels. Moreover, diffraction patterns for new minerals such as muscovite and crystobalite were formed, with the disappearance of clay minerals. The presence of aluminosilicate gel binding systems was revealed by Fourier transform infrared spectroscopy. The participation of clay minerals in the geopolymerisation distinguishes the developed expansive soil geopolymer from the conventional geopolymers developed for concrete applications.
机译:废物遏制设施需要衬垫和盖子以获得安全废物处理,可以使用强大的绿色技术有效地实现。在本研究中,采用了一种适用于废物遏制施用的可靠膨胀土壤地质聚合的系统方法。认为影响酸环聚合物的各种因素包括前体型(P-T),前体含量,液体碱氢氧化物型(L-T),活化剂 - 前体比(A / P)和制备方法。采用渗透性,体积收缩和无束缚抗压强度的多光栅优化,以实现满足调节要求作为液压屏障材料的土壤地质聚合物。这是使用稳健的实验设计和实用概念完成的,以规定实现可靠的土壤地质聚合物的框架。得到的结果表明,因子(P(T)XL(T))和(P(T)XA / P)之间的显着相互作用影响了响应特征,从而影响了土壤地质聚合物性能。多孔优化的适当性以95%的置信区间确认,显示出在某些条件下,发达的土壤地质聚合物可用于废物遏制设施。利用微观结构分析澄清了地聚合物化方法的证据。扫描电子显微镜和能量分散光谱支持N-A-S-H和K-A-S-H凝胶的形成。此外,形成了新矿物质的衍射图案,例如Muscovite和Crystbalite,随着粘土矿物的消失。傅里叶变换红外光谱揭示了铝硅酸盐凝胶结合系统的存在。粘土矿物在地缘聚合物中的参与区分了开发的膨胀土壤聚合物免于用于混凝土应用的常规地质聚合物。

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