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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (6): 2203-2214.DOI: 10.16552/j.cnki.issn1001-1625.2025.1109

• 道路材料 • 上一篇    

生物聚合物协同纤维固化黄土的三轴压缩与崩解特性研究

倪静(), 张航(), 朱莉莉   

  1. 上海理工大学环境与建筑学院,上海 200093
  • 收稿日期:2025-11-12 修订日期:2026-01-03 出版日期:2026-06-15 发布日期:2026-07-14
  • 通信作者: 张 航,硕士研究生。E-mail:zhanghang121316@163.com
  • 作者简介:倪 静(1983—),女,博士,副教授。主要从事软土地基加固方面的研究。E-mail:wendy_1943@163.com
  • 基金资助:
    上海市白玉兰人才计划浦江项目A类(24PJA088)

Triaxial Compression and Disintegration Characteristics of Loess Stabilized by Biopolymer-Fiber Composites

NI Jing(), ZHANG Hang(), ZHU Lili   

  1. School of Environment and Architecture,University of Shanghai for Science and Technology,Shanghai 200093,China
  • Received:2025-11-12 Revised:2026-01-03 Published:2026-06-15 Online:2026-07-14

摘要:

黄土强度低且水敏性高,给黄土地区土木工程带来了严峻挑战。为应对传统水泥/石灰固化剂存在的高碳排与生态破坏等问题,本文采用环境友好型生物聚合物黄原胶与椰壳纤维联合固化黄土,通过三轴剪切试验、崩解试验及SEM微观测试等手段,分析了不同生物质材料配比对固化黄土的应力-应变关系、抗剪强度参数与崩解特性的影响,并阐述了协同固化机理。三轴试验表明,黄原胶与椰壳纤维可显著提升土体抗剪强度,且改良效果与掺量呈正相关。其中,黄原胶对黏聚力的增强作用优于对内摩擦角的影响,而椰壳纤维的作用则相反。崩解试验表明,随着黄原胶与椰壳纤维掺量的增加,崩解率逐渐降低、崩解过程明显延缓,且黄原胶起主导作用。SEM试验表明,黄原胶通过胶结土颗粒、填充孔隙与形成阻水凝胶膜,发挥胶结与阻塞作用;椰壳纤维则通过嵌入土体形成三维网络,促进应力传递并抑制裂缝扩展;二者协同作用下,黄原胶可促进土颗粒与纤维间的黏结,形成“黄原胶-纤维-黏土”复合基质,增强界面约束与增韧效果,从而提升土体的抗剪强度与水稳定性。本研究为黄土地区推广应用生态友好型固土技术提供了重要的数据与理论支撑。

关键词: 黄土, 黄原胶, 椰壳纤维, 三轴试验, 崩解试验, SEM

Abstract:

Loess is a Quaternary sediment extensively distributed in Northwest China and is commonly used as foundation and construction material in engineering projects. Nevertheless, natural loess is featured by loose porous structure and high water sensitivity, leading to rapid strength degradation, collapse, disintegration, and even landslides upon water immersion, which severely threaten the long-term safety of engineering structures. Traditional loess stabilization methods using cement, lime, and fly ash can effectively enhance soil strength but are associated with high carbon emissions and ecological damage, which are inconsistent with China’s dual carbon policy. In response, environmentally friendly biopolymers and natural fibers have emerged as promising alternatives for sustainable soil improvement. This study aims to investigate the feasibility of using xanthan gum (XG), an anionic biopolymer, combined with coconut shell fiber (CF) to stabilize loess, focusing on shear strength, disintegration resistance, and synergistic reinforcement mechanisms. A series of consolidated-undrained triaxial shear tests, disintegration tests, and scanning electron microscopy (SEM) tests were conducted on composite-stabilized loess with five XG contents (0%, 0.5%, 1.0%, 1.5%, 2.0%) and five CF contents (0%, 0.25%, 0.50%, 0.75%, 1.00%). Triaxial test results indicate that XG and CF synergistically enhance the shear strength of loess in a dosage-dependent manner. Specifically, XG exhibits a slightly more pronounced effect on cohesion than on the internal friction angle, while CF demonstrates a substantially stronger effect on the internal friction angle than on cohesion, with an improvement amplitude approximately twice that of cohesion. The optimum dosage combination of 2.0% xanthan gum and 1.00% coconut shell fiber increases the cohesion and internal friction angle by 79% and 73% compared with the unamended loess, respectively. Disintegration tests demonstrate that increasing XG and CF contents gradually reduces the disintegration rate and delays the disintegration process, in which XG plays a dominant role. In particular, when the XG dosage increases from 0% to 0.5%, the disintegration rate of stabilized loess decreases by more than 80% regardless of the CF dosage. The optimum dosage combination of 2.0% XG and 1.00% CF allows the stabilized loess to maintain integrity without obvious disintegration, solving the inherent defect that loess is prone to instability upon water immersion. SEM microstructural observations reveal that XG provides cementation and pore-clogging effects by bonding soil particles, filling pores, and forming water-impermeable gel membranes. CF forms a three-dimensional reinforcing network by embedding in the soil matrix, thus promoting stress transfer and restraining crack propagation. Under the synergistic interaction, XG enhances the interfacial bonding between soil particles and fibers, forming a compact “XG-CF-clay” composite matrix that strengthens interfacial restriction and toughening efficiency. This synergistic effect ultimately improves the shear strength and water stability of loess. The results of this study provide important data and theoretical support for the application and promotion of eco-friendly biopolymer-based soil stabilization technologies in loess areas.

Key words: loess, xanthan gum, coconut shell fiber, triaxial test, disintegration test, SEM

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