Krishnan Dhanalakshmi, Muniraj Dhanasekaran, Prakash Arul Jose
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引用次数: 0
摘要
本实验研究了不同硅-氧化铝(Si/Al)比例对偏高岭土合成地聚合物的影响。采用不同比例的Si/Al(1:1, 1.5: 1,2: 1,3: 1,4: 1和5:1),纳米二氧化硅是改变Si比的源材料。采用扫描电镜(SEM)、x射线衍射(XRD)、核磁共振(NMR)和抗压强度测试等方法分析了材料的微观结构和强度。研究了铝和硅分子的溶解速率以及N-A-S-H凝胶的形成。结果表明,硅铝比为2:1时,硅铝的溶解明显增强,形成Si - o - t键,抗压强度显著提高。计算分析证实,力学性能主要归因于N-A-S-H凝胶的形成,而不是沸石核或硅酸盐衍生物。这些发现为地聚合在高硅铝比尾矿中的应用提供了有价值的见解。
Investigating the Effect of Silica to Alumina Ratios on the Chemical Structure of Metakaolin Based Geopolymers
This experimental study investigates the impact of different silica-to-alumina (Si/Al) ratios on geopolymers synthesized from metakaolin. Various ratios of Si/Al (1 : 1, 1.5 : 1, 2 : 1, 3 : 1, 4 : 1, and 5 : 1) were employed, nano-silica was the source material to alter the Si ratio. Microstructure and strength were analysed using SEM, XRD, NMR, and compressive strength testing Geopolymerization, a sustainable material synthesis process, was investigated using FTIR spectroscopy and computational modeling. The dissolution rates of aluminum and silicon molecules, as well as the formation of N-A-S-H gel, were studied. Results revealed that a Si/Al ratio of 2 : 1 significantly enhanced the dissolution of silicon and aluminum, leading to the formation of Si–O–T bonds and superior compressive strength. Computational analysis confirmed that the mechanical performance was primarily attributed to the formation of N-A-S-H gel, rather than zeolitic nuclei or silicate derivatives. These findings provide valuable insights for the application of geopolymerization in valorizing mine tailings, which often exhibit high Si/Al ratios.
期刊介绍:
The journal publishes scientific developments and applications in the field of coal beneficiation and preparation for coking, coking processes, design of coking ovens and equipment, by-product recovery, automation of technological processes, ecology and economics. It also presents indispensable information on the scientific events devoted to thermal rectification, use of smokeless coal as an energy source, and manufacture of different liquid and solid chemical products.