Quantitative microstructural characterization and seepage visualization of biocemented sand

IF 5.3 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
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引用次数: 0

Abstract

Microbial-induced carbonate precipitation (MICP) is a novel geotechnical reinforcement method that can be used for slope protection, erosion mitigation and seepage control without compromising the soil structure. Based on computed tomography (CT) 3D reconstruction, pore parameters such as the connected porosity, pore equivalent diameter and coordination number are extracted to quantitatively evaluate the effect of the calcium carbonate content on the microstructure of biocemented sand. Then, simulations are conducted to analyze the seepage characteristics of single-phase water flow in the pore space, and 3D visualization of porous seepage in biocemented sand is achieved. The results indicate that as the calcium carbonate content increases, there is a noticeable decrease in total porosity, which is accompanied by an increase in the number of isolated pores and a decrease in the number of connected pores. Concurrently, the average pore equivalent diameter increases, while the pore coordination number decreases. Seepage simulation shows that the permeability of biocemented sand has strong anisotropy, and the pore structure has a strong control effect on the seepage. With increasing calcium carbonate content, the biocemented sand streamlines gradually develop from a network to a branching shape until several main stems remain.

生物加固砂的定量微结构表征和渗流可视化
微生物诱导碳酸盐沉淀(MICP)是一种新型岩土加固方法,可用于边坡防护、侵蚀减缓和渗流控制,且不影响土壤结构。基于计算机断层扫描(CT)三维重建,提取了孔隙参数,如连通孔隙率、孔隙等效直径和配位数,以定量评估碳酸钙含量对生物加固砂微观结构的影响。然后,模拟分析了孔隙中单相水流的渗流特性,实现了生物水泥砂中多孔渗流的三维可视化。结果表明,随着碳酸钙含量的增加,总孔隙率明显下降,同时孤立孔隙数量增加,连通孔隙数量减少。同时,平均孔隙当量直径增加,而孔隙配位数减少。渗流模拟表明,生物水泥砂的渗透性具有很强的各向异性,孔隙结构对渗流有很强的控制作用。随着碳酸钙含量的增加,生物水泥砂的流线逐渐从网状发展为分支状,直至剩下几条主干。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Computers and Geotechnics
Computers and Geotechnics 地学-地球科学综合
CiteScore
9.10
自引率
15.10%
发文量
438
审稿时长
45 days
期刊介绍: The use of computers is firmly established in geotechnical engineering and continues to grow rapidly in both engineering practice and academe. The development of advanced numerical techniques and constitutive modeling, in conjunction with rapid developments in computer hardware, enables problems to be tackled that were unthinkable even a few years ago. Computers and Geotechnics provides an up-to-date reference for engineers and researchers engaged in computer aided analysis and research in geotechnical engineering. The journal is intended for an expeditious dissemination of advanced computer applications across a broad range of geotechnical topics. Contributions on advances in numerical algorithms, computer implementation of new constitutive models and probabilistic methods are especially encouraged.
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