{"title":"河流沉积物在可持续胶凝凝胶材料中的增值:特征、活化和性能综述。","authors":"Yuanxun Zheng, Yuxiao Xie, Yu Zhang, Cong Wan, Li Miao, Peng Zhang","doi":"10.3390/gels11090755","DOIUrl":null,"url":null,"abstract":"<p><p>River sediments have attracted increasing attention as alternative raw materials for sustainable cementitious materials due to their abundant availability and silica-alumina-rich composition. In this study, a systematic literature search was conducted in Web of Science and Google Scholar using combinations of the keywords \"river sediment,\" \"cementitious materials,\" \"activation,\" and \"pozzolanic activity,\" covering publications up to July 2025. In addition, a citation network tool (Connected Papers) was employed to trace related works and ensure comprehensive coverage of emerging studies. 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引用次数: 0
摘要
河流沉积物由于其丰富的可用性和富含硅铝的成分,作为可持续胶凝材料的替代原料受到越来越多的关注。本研究结合关键词“河流沉积物”、“胶凝物质”、“活化”和“火山活动”,在Web of Science和谷歌Scholar上进行了系统的文献检索,涵盖了截至2025年7月的出版物。此外,利用引文网络工具(Connected Papers)对相关文献进行追踪,确保对新兴研究的全面覆盖。本文系统地研究了来自不同地区的河流沉积物的特性,以及碱/酸活化、热煅烧和机械研磨等活化和改性技术。分析了它们在各种胶凝体系中的应用,并比较了混合设计模型,以阐明替代细骨料、粗骨料和水泥对和易性、强度和耐久性的影响。通过XRD、FTIR和TG-DSC等多尺度表征揭示了C-S-H和C-A-S-H凝胶形成、孔隙细化和界面过渡区致密化的机理。该综述强调了三个关键发现:(1)适度的沉积物置换(20-30%)在不影响流动性的情况下提高了强度;(2) 600 ~ 850℃碱水玻璃活化和煅烧能有效增强火山灰活性;(3)将最小膏体厚度理论与添加剂(如减水剂、纤维或生物炭)相结合,可以实现高性能和低碳混凝土设计。为河流沉积物高价值利用、混凝土减碳、资源可持续循环利用提供了全面的理论基础和技术途径。
Valorization of River Sediments in Sustainable Cementitious Gel Materials: A Review of Characteristics, Activation, and Performance.
River sediments have attracted increasing attention as alternative raw materials for sustainable cementitious materials due to their abundant availability and silica-alumina-rich composition. In this study, a systematic literature search was conducted in Web of Science and Google Scholar using combinations of the keywords "river sediment," "cementitious materials," "activation," and "pozzolanic activity," covering publications up to July 2025. In addition, a citation network tool (Connected Papers) was employed to trace related works and ensure comprehensive coverage of emerging studies. This review systematically examines the properties of river sediments from diverse regions, along with activation and modification techniques such as alkali/acid activation, thermal calcination, and mechanical milling. Their applications in various cementitious systems are analyzed, with mix design models compared to elucidate the effects of replacing fine aggregates, coarse aggregates, and cement on workability, strength, and durability. Multi-scale characterization via XRD, FTIR, and TG-DSC reveals the mechanisms of C-S-H and C-A-S-H gel formation, pore refinement, and interfacial transition zone densification. The review highlights three key findings: (1) moderate sediment replacement (20-30%) improves strength without compromising flowability; (2) alkali-water glass activation and calcination at 600-850 °C effectively enhance pozzolanic activity; and (3) combining the minimum paste thickness theory with additives such as water reducers, fibers, or biochar enables high-performance and low-carbon concrete design. This review provides a comprehensive theoretical foundation and technical pathway for the high-value utilization of river sediments, carbon reduction in concrete, and sustainable resource recycling.
期刊介绍:
The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts.
Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.