Study on preparation and performance of cement-stabilized macadam containing ground sludge gasification slag (GSGS)

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-03-05 DOI:10.1039/D5RA00462D
Xiaoyan Zhang, Xiaoqi Wang, Zhiyong Li, Kele Wang, Juntao Ma and Shunbo Zhao
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Abstract

Traditional cement-based road materials face problems of high energy consumption and carbon emissions, and the use of activated solid waste as a substitute for cementitious materials has been applied in road engineering. Sludge gasification slag (SGS), a product obtained from the pyrolysis and gasification of sludge, is a typical silicon–aluminum-rich solid waste that exhibits good compatibility with alkaline activation systems due to its potential activity. This study focuses on the component reconstruction mechanism of SGS in alkali-activated materials, employing cement (P) and carbide slag (CS) for synergistic modification, exploring the mechanism for enhancing the cementitious properties of sludge gasification slag under multi-component mixing conditions, and verifying its feasibility for use in cement-stabilized macadam. The results show that GSGS and GCS have a synergistic activation effect in the cement hydration system, promoting the formation of C–(A)–S–H gel and AFt. When both are incorporated in a mass ratio of 6 : 4 and account for 70% of the composite system, the compressive strength is increased by 53.19% compared to alone. When the composite material is used in cement-stabilized macadam with a 40% replacement ratio of cement, there is no significant decrease in strength, verifying the feasibility of using cement-composite sludge gasification slag in cement-stabilized macadam.

Abstract Image

含地面污泥气化渣(GSGS)水泥稳定碎石的制备及性能研究
传统的水泥基道路材料面临着高能耗和高碳排放的问题,利用活性固体废物作为胶凝材料的替代品已在道路工程中得到应用。污泥气化渣(SGS)是污泥热解气化的产物,是一种典型的富硅铝固体废弃物,由于其潜在的活性,与碱性活化体系具有良好的相容性。本研究重点研究了SGS在碱活性材料中的组分重构机理,采用水泥(P)和电石渣(CS)进行协同改性,探索了多组分混合条件下提高污泥气化渣胶凝性能的机理,验证了其在水泥稳定碎石中的可行性。结果表明,GSGS和GCS在水泥水化体系中具有协同活化作用,促进了C - (a) - s - h凝胶和AFt的形成。当GSGS和GCS以6:4的质量比掺入到复合体系中,占比达到70%时,复合体系的抗压强度比单独掺入时提高了53.19%。当复合材料用于水泥替代率为40%的水泥稳定碎石时,强度没有明显下降,验证了水泥-复合污泥气化渣在水泥稳定碎石中使用的可行性。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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