Shrinkage Cracking Characteristics and Micro-Mechanism of Bentonite and Glass-Fiber-Modified Cement Soil in Dry Environment.

IF 3.2 3区 材料科学 Q3 CHEMISTRY, PHYSICAL
Materials Pub Date : 2026-04-21 DOI:10.3390/ma19081671
Zili Dai, Xiaowei Lu, Lin Wang, Shifei Yang, Rong Wang
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Abstract

In order to investigate the effects of bentonite and glass fiber on the macroscopic mechanical properties and microscopic mechanisms of cement soil in dry environments, a series of laboratory tests were conducted in this study, including drying tests under controlled environments (30 °C, 50% humidity), unconfined compressive strength (UCS) tests, digital image processing technology, and scanning electron microscopy (SEM) analyses. The moisture evaporation law, surface crack development process, UCS variation, and microstructure evolution of cement soil with different mix proportions (bentonite content: 0-9%; glass fiber content: 0-0.5%) were systematically analyzed. The results show that bentonite can significantly enhance the water retention capacity of cement soil, reduce the water evaporation rate, and increase the unconfined compressive strength by filling internal pores to densify the microstructure. Glass fibers form a three-dimensional network structure in the matrix, exerting a bridging effect to inhibit crack initiation and propagation, and optimize the mechanical properties. The unconfined compressive strength increases significantly with an increase in bentonite content (3-9%), and the optimal fiber content for strength improvement is determined as 0.3%. The synergistic effect of bentonite and fibers optimizes the interfacial bonding force between fibers and the matrix, which remarkably improves the anti-cracking performance of cement soil. Specifically, when the bentonite content is 6-9% and the fiber content is 0.3-0.5%, the cement soil maintains complete integrity after drying, with no obvious cracks on the surface. SEM analysis reveals that the addition of bentonite and fibers inhibits the expansion and connection of internal voids, avoiding the cycle of "void enlargement-stress concentration-crack propagation". This study provides a scientific basis for the engineering application of cement soil in a dry environment.

干环境下膨润土和玻璃纤维改性水泥土收缩开裂特性及微观机理
为了研究膨润土和玻璃纤维对干燥环境下水泥土宏观力学特性和微观机理的影响,本研究开展了一系列室内试验,包括受控环境(30℃、50%湿度)下的干燥试验、无侧限抗压强度(UCS)试验、数字图像处理技术和扫描电镜(SEM)分析。系统分析了不同掺量(膨润土含量0 ~ 9%,玻璃纤维含量0 ~ 0.5%)水泥土的水分蒸发规律、表面裂缝发育过程、UCS变化及微观结构演变。结果表明:膨润土通过填充内部孔隙致密化微观结构,可以显著提高水泥土的保水能力,降低水分蒸发速率,提高无侧限抗压强度;玻璃纤维在基体中形成三维网状结构,起到桥接作用,抑制裂纹萌生和扩展,优化力学性能。随着膨润土含量的增加(3 ~ 9%),无侧限抗压强度显著提高,提高强度的最佳纤维含量为0.3%。膨润土与纤维的协同作用优化了纤维与基体的界面结合力,显著提高了水泥土的抗裂性能。具体而言,当膨润土含量为6-9%,纤维含量为0.3-0.5%时,水泥土干燥后保持完整,表面无明显裂缝。SEM分析表明,膨润土和纤维的加入抑制了内部空隙的扩展和连接,避免了“空隙扩大-应力集中-裂纹扩展”的循环。本研究为水泥土在干燥环境下的工程应用提供了科学依据。
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
Materials
Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
5.80
自引率
14.70%
发文量
7753
审稿时长
1.2 months
期刊介绍: Materials (ISSN 1996-1944) is an open access journal of related scientific research and technology development. It publishes reviews, regular research papers (articles) and short communications. 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 length of the papers. The full experimental details must be provided so that the results can be reproduced. Materials provides a forum for publishing papers which advance the in-depth understanding of the relationship between the structure, the properties or the functions of all kinds of materials. Chemical syntheses, chemical structures and mechanical, chemical, electronic, magnetic and optical properties and various applications will be considered.
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