基于气-离子-固相相互作用的水泥基材料碳化多物种反应传输模型

IF 10.9 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Suntharalingam Sharmilan , Henrik Stang , Alexander Michel
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引用次数: 0

摘要

本研究提供了一个反应传输建模框架,用于通过孔隙溶液组成、水泥基材料中的相组合变化以及孔隙溶液组成对钢腐蚀的变化来理解碳酸化过程。该研究强调了考虑孔隙结构变化对质量传输的重要性,并利用表面络合模型预测孔隙溶液成分的变化,了解其对钢腐蚀的影响。在碳酸化过程中,观察到碳酸化区域的钠和钾含量明显富集,这导致孔溶液中的碱浓度降低,并且碱离子向碳酸化区域迁移。同时,对于硫和氯化物含量都观察到相反的行为。在固相分解时观察到孔溶液中硫和氯化物的浓度增加。钙离子被输送到碳酸化区,进一步增加了暴露表面附近方解石的形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A multi-species reactive transport model based on gas-ion-solid phase interaction for the carbonation of cement-based materials

This study presents a reactive transport modelling framework for understanding carbonation processes through pore solution composition, phase assemblage changes in cement-based materials, and pore solution composition changes on steel corrosion. The study emphasizes the significance of considering pore structure changes on mass transport and utilizing a surface complexation model for predicting changes in pore solution composition and comprehending its influence on steel corrosion. A clear enrichment in sodium and potassium content in carbonated regions is observed upon carbonation, which leads to a decrease in alkali concentration in the pore solution, and alkali ions are transported toward the carbonated zone. Simultaneously, the opposite behaviour is observed for both the sulphur and chloride content. The increase in the concentration of sulphur and chloride in the pore solution was observed upon the decomposition of the solid phase. Calcium ions are transported to the carbonated zone, further increasing calcite formation near the exposed surface.

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来源期刊
Cement and Concrete Research
Cement and Concrete Research 工程技术-材料科学:综合
CiteScore
20.90
自引率
12.30%
发文量
318
审稿时长
53 days
期刊介绍: Cement and Concrete Research is dedicated to publishing top-notch research on the materials science and engineering of cement, cement composites, mortars, concrete, and related materials incorporating cement or other mineral binders. The journal prioritizes reporting significant findings in research on the properties and performance of cementitious materials. It also covers novel experimental techniques, the latest analytical and modeling methods, examination and diagnosis of actual cement and concrete structures, and the exploration of potential improvements in materials.
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