热活化对月球岩石模拟基前驱体和由此产生的土工聚合物的影响:成分、结构、溶解性和反应性

IF 10.8 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Guangjie Xue, Guofu Qiao
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引用次数: 0

摘要

碱活化是一种很有前景的月球残留岩原地资源利用(ISRU)方法。提高月球碎屑模拟物的土工聚合反应活性是最大限度减少碱活化剂用量和提高原材料利用率的关键。本研究调查了热活化对前驱体材料和由此产生的土工聚合物的影响。首先,使用 XRD-Rietveld、XPS 和拉曼光谱分析了热活化样品的矿物组成和化学结构变化。随后,采用 ICP-OES 测量了各种热活化样品在 NaOH 溶液中的溶解度。最后,使用 SEM-EDS、FTIR、DSC 和抗压强度测试评估了土工聚合物的理化成分和微观结构。结果表明,热活化可通过增加非桥接氧(NBO)含量、降低聚合度以及改变硅、铝和氧的结合能来提高前驱体的反应性。更全面的热活化过程产生的土工聚合物具有更好的抗压强度、更高的反应度和更致密的微观结构,并能促进富硅凝胶的形成。因此,通过热活化处理前驱体材料为创造具有优异性能的月球碎屑土工聚合物建筑材料提供了巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impacts of thermal activation on lunar regolith simulant-based precursor and resulting geopolymer: Composition, structure, solubility, and reactivity
Alkali activation presents a promising method for the in situ resource utilization (ISRU) of lunar regolith. Enhancing the geopolymerization reactivity of lunar regolith simulant is key in minimizing alkali activator usage and improving raw material utilization. This study investigates the impact of thermal activation on precursor materials and the resultant geopolymers. Initially, the mineralogical composition and chemical structural changes in thermally activated samples were analyzed using XRD-Rietveld, XPS, and Raman spectroscopy. Subsequently, ICP-OES was employed to measure the solubility of various thermally activated samples in NaOH solution. Finally, the physicochemical composition and microstructure of the geopolymers were evaluated using SEM-EDS, FTIR, DSC, and compressive strength tests. The results show that thermal activation enhances precursor reactivity by increasing the non-bridging oxygen (NBO) content, reducing polymerization, and altering the binding energies of Si, Al, and O. Following thermal activation, the solubility of Si and Al in the NaOH solution was significantly improved. A more comprehensive thermal activation process produces geopolymers with improved compressive strength, a higher reaction degree, and a denser microstructure, and encourages the formation of Si-rich gels. Hence, treating precursor materials via thermal activation offers vast potential for creating lunar regolith geopolymer-based building materials with excellent properties.
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来源期刊
Cement & concrete composites
Cement & concrete composites 工程技术-材料科学:复合
CiteScore
18.70
自引率
11.40%
发文量
459
审稿时长
65 days
期刊介绍: Cement & concrete composites focuses on advancements in cement-concrete composite technology and the production, use, and performance of cement-based construction materials. It covers a wide range of materials, including fiber-reinforced composites, polymer composites, ferrocement, and those incorporating special aggregates or waste materials. Major themes include microstructure, material properties, testing, durability, mechanics, modeling, design, fabrication, and practical applications. The journal welcomes papers on structural behavior, field studies, repair and maintenance, serviceability, and sustainability. It aims to enhance understanding, provide a platform for unconventional materials, promote low-cost energy-saving materials, and bridge the gap between materials science, engineering, and construction. Special issues on emerging topics are also published to encourage collaboration between materials scientists, engineers, designers, and fabricators.
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