Analysis of instability and failure mechanisms in a soilbag slope protection structures under rainfall infiltration: Field test and DEM simulation

IF 8 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Jiming Yang , Jingjing Zhang , Guoqiang Wu , Hongri Zhang , Pengpeng Ni
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引用次数: 0

Abstract

The restraining effect of soilbags inhibits soil dilatancy, enhancing the strength and stiffness of the wrapped soil. As a permanent slope protection structure (SSPS), the application of counterpressure enhances stability by improving slope surface stiffness and limiting deformation. While reinforced slopes have been extensively studied, mechanistic investigations into the stability and failure processes of SSPS remain limited. This study numerically investigated the macro-meso mechanisms of SSPS instability using the discrete element method. Macroscopically, rainfall infiltration increases water absorption, resulting in longitudinal settlement, deformation, and eventual instability. With a friction coefficient of 0.5, the lower soilbags resist sliding forces until the front soilbags are damaged. Inadequate sufficient friction causes the front soilbags to be displaced outward, leading to structural collapse as the lower soilbags bear the additional load. Microscopically, geosynthetic wrapping restrains soil dilatancy, promoting tighter particle arrangements and secondary reinforcement through soilbag expansion. During instability, primary contact forces concentrate on longitudinal settlement, vertical back pressure, and downslope sliding, with force chain evolution revealing slip band formation. Soilbags facilitate coordinated particle deformation and stress distribution, transitioning from anisotropic to isotropic states as instability progresses. These findings enhance the understanding of SSPS instability mechanisms, providing guidance for more reliable design and construction practices.
降雨入渗作用下土包护坡结构失稳破坏机制分析:现场试验与DEM模拟
土袋的抑制作用抑制了土体的膨胀,提高了包裹土的强度和刚度。反压作为一种永久性边坡防护结构,通过提高边坡表面刚度和限制变形来增强边坡稳定性。虽然对加固边坡进行了广泛的研究,但对加固边坡的稳定性和破坏过程的力学研究仍然有限。本文采用离散元法对SSPS的宏观-细观失稳机理进行了数值研究。宏观上,降雨入渗增加了吸水量,导致纵向沉降、变形和最终失稳。摩擦系数为0.5,下部土袋抵抗滑动力,直至前部土袋被破坏。由于摩擦力不足,前部土袋向外位移,下部土袋承受额外荷载,导致结构倒塌。微观上,土工合成材料包裹抑制了土壤膨胀,通过土袋膨胀促进颗粒排列紧密和二次加固。失稳期间,主要接触力集中于纵向沉降、垂直背压和下坡滑动,力链演化揭示了滑带的形成。土袋促进了颗粒变形和应力分布的协调,随着失稳的进行,土袋从各向异性状态过渡到各向同性状态。这些发现增强了对ssp不稳定机制的理解,为更可靠的设计和施工实践提供指导。
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
Construction and Building Materials
Construction and Building Materials 工程技术-材料科学:综合
CiteScore
13.80
自引率
21.60%
发文量
3632
审稿时长
82 days
期刊介绍: Construction and Building Materials offers an international platform for sharing innovative and original research and development in the realm of construction and building materials, along with their practical applications in new projects and repair practices. The journal publishes a diverse array of pioneering research and application papers, detailing laboratory investigations and, to a limited extent, numerical analyses or reports on full-scale projects. Multi-part papers are discouraged. Additionally, Construction and Building Materials features comprehensive case studies and insightful review articles that contribute to new insights in the field. Our focus is on papers related to construction materials, excluding those on structural engineering, geotechnics, and unbound highway layers. Covered materials and technologies encompass cement, concrete reinforcement, bricks and mortars, additives, corrosion technology, ceramics, timber, steel, polymers, glass fibers, recycled materials, bamboo, rammed earth, non-conventional building materials, bituminous materials, and applications in railway materials.
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