黄土-红层滑带土界面剪切强度特性与微观机制研究OA
Shear strength characteristics and microscopic mechanisms of the loess-red bed slip zone soil interface
黄土-红层接触面滑坡在我国西北地区频繁发生.为了深入探究此类滑坡的发生机制,以典型黄土-红层接触面滑坡滑带土为研究对象,通过开展黄土、红层及黄土-红层复合三种类型试样的环剪试验与扫描电镜试验,系统分析了不同法向应力、含水率及剪切速率条件下界面剪切强度特性与微观结构演变规律.研究结果表明:(1)三种类型滑带土的峰值强度与残余强度随着法向应力增大显著提升,三类土体的峰值强度均随含水率增加呈单峰型变化规律,三类土体的峰值强度随剪切速率的增加而呈现小幅上升;(2)黄土-红层复合试样对含水率变化最敏感,强度衰减最为显著,其脆性指数高达 15.6%,远高于单一土体,表明其更易发生应变软化型破坏;(3)通过微观结构分析发现,随着含水率上升,黄土-红层复合试样中黏土颗粒胶结变弱,片状矿物滑移性增强,形成光滑剪切面,导致强度弱化.综合野外调研和室内试验分析揭示了黄土-红层接触面滑坡机理,发现黄土-红层接触面在水力作用下的弱化效应是边坡失稳的核心机制.相关研究成果可为黄土-红层接触面滑坡的灾害预测与防灾设计提供理论支撑.
Loess-red bed interface landslides occur frequently in Northwest China,and the critical conditions for their initiation are closely related to the dynamic evolution of the shear strength at the contact interface.To investigate the initiation mechanisms of such landslides,this study takes the slip zone soils of typical loess-red bed interface landslides as research objects.Through ring shear tests and scanning electron microscopy(SEM)analyses conducted on three types of samples(pure loess,pure red bed,and loess-red bed composites)the study systematically evaluates the evolution of shear strength and microscopic structures under varying normal stresses,water contents,and shear rates.The results show that:(1)The peak and residual shear strengths of all three soil types increase markedly with increasing normal stress.The peak shear strength exhibits a unimodal variation with water content and shows a slight increasing trend with increasing shear rate.(2)The loess-red bed composite samples are most sensitive to water content changes,with the most significant strength attenuation.Their brittleness index reaches 15.6%,significantly higher than that of the single-component soils,indicating a stronger tendency toward strain-softening failure.(3)Microscopic observations reveal that increasing water content weakens cementation of clay particles,and the enhanced lubricating of flaky minerals promotes the formation of smooth shear surfaces,leading to a significant reduction in interfacial shear strength.Integrating field investigations with laboratory tests,the initiation mechanism of loess-red bed interface landslides is clarified.The hydraulic weakening effect of the loess-red bed interface is identified as the core mechanism controlling slope instability.
张舒晴;王新刚;陆梅;臧国军;薛晨;田发国;刘凯;闫渊
西北大学地质学系,陕西 西安 710069||数字孪生与重大设施灾害防控陕西省高等学校重点实验室,陕西 西安 710069西北大学地质学系,陕西 西安 710069||数字孪生与重大设施灾害防控陕西省高等学校重点实验室,陕西 西安 710069中国石油长庆油田分公司油气工艺研究院,陕西 西安 710018中国石油长庆油田分公司油田开发事业部,陕西 西安 710018西安石油大学地球科学与工程学院,陕西 西安 710065中国石油长庆油田分公司油气工艺研究院,陕西 西安 710018西北大学地质学系,陕西 西安 710069||数字孪生与重大设施灾害防控陕西省高等学校重点实验室,陕西 西安 710069西北大学地质学系,陕西 西安 710069||数字孪生与重大设施灾害防控陕西省高等学校重点实验室,陕西 西安 710069
天文与地球科学
黄土-红层接触面滑坡界面剪切剪切强度微观结构边坡失稳
loess-red bed interface landslideinterfacial shearshear strengthmicrostructureslope instability
《中国地质灾害与防治学报》 2026 (3)
112-121,10
国家重点研发计划项目(2023YFC3008401)陕西省自然科学基础研究计划重点项目(2024JC-ZDXM-19)
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