初始固结应力对平面应变黄土剪切破坏特性影响

李宝平, 杨倩, 张玉, 平高权, 王智. 2020. 初始固结应力对平面应变黄土剪切破坏特性影响. 水文地质工程地质, 47(5): 92-99. doi: 10.16030/j.cnki.issn.1000-3665.201912058
引用本文: 李宝平, 杨倩, 张玉, 平高权, 王智. 2020. 初始固结应力对平面应变黄土剪切破坏特性影响. 水文地质工程地质, 47(5): 92-99. doi: 10.16030/j.cnki.issn.1000-3665.201912058
LI Baoping, YANG Qian, ZHANG Yu, PING Gaoquan, WANG Zhi. 2020. Effect of initial solidification stress on shear failure characteristics of loess under the plane strain condition. Hydrogeology & Engineering Geology, 47(5): 92-99. doi: 10.16030/j.cnki.issn.1000-3665.201912058
Citation: LI Baoping, YANG Qian, ZHANG Yu, PING Gaoquan, WANG Zhi. 2020. Effect of initial solidification stress on shear failure characteristics of loess under the plane strain condition. Hydrogeology & Engineering Geology, 47(5): 92-99. doi: 10.16030/j.cnki.issn.1000-3665.201912058

初始固结应力对平面应变黄土剪切破坏特性影响

  • 基金项目:

    国家自然科学基金项目资助(11802218);陕西省科技计划项目资助(2019JQ-432;2019JQ-835);陕西省黄土力学与工程重点实验室项目资助(LME201801);陕西省教育厅专项科研计划项目资助(20JK0670);西安工业大学校长基金项目资助(XAGDXJJ18018)

详细信息
    作者简介: 李宝平(1971-),男,硕士,副教授,主要从事岩土与地下工程等教学和科研工作。E-mail:459485782@qq.com
    通讯作者: 张玉(1984-),男,博士,副教授,主要从事黄土力学研究。E-mail:153673438@qq.com
  • 中图分类号: TU411.7;TU444

Effect of initial solidification stress on shear failure characteristics of loess under the plane strain condition

More Information
  • 针对黄土工程中大量存在的平面应变问题,在均压固结条件下研究的较多,但与土实际的应力状态不符,利用平面应变改造后的真三轴仪,模拟土体的实际应力状态,通过原状黄土在不同初始固结应力比、含水率和围压条件下的竖向加载平面应变试验,揭示不同初始固结应力比、含水率和围压对原状黄土强度特性影响及破坏时中主应力变化规律。研究结果表明:偏压固结原状黄土的强度随着初始固结应力比的增大而增大,且明显大于均压固结;抗剪强度及破坏时p、q随着初始固结应力比的减小或含水率的增大而减小;土体原生结构损伤程度随着初始固结应力比的增大而增大使得黏聚力减小;当次生结构形成土颗粒间挤密使得内摩擦角增大;破坏时刻的中主应力随初始固结应力比增大而增大;破坏时刻的中主应力系数范围在0.15~0.45之间;平面应变条件下原状黄土破坏时的固结围压及含水率对中主应力系数的影响较明显。研究结果对进一步完善原状黄土的平面应变试验研究,进而解决平面应变条件下的黄土工程建设问题,提供试验依据和理论基础。
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出版历程
收稿日期:  2019-12-24
修回日期:  2020-02-26

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