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Cyclic direct shear behaviors of frozen soil-structure interface under constant normal stiffness condition

机译:恒定法向刚度条件下冻土-结构界面的循环直接剪切特性

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摘要

The frozen soil-structure interface is the key connecting component between structures and the soil in the permafrost regions. The soil-structure interface is usually subjected to seismic or wind loadings; consequently the cyclic shear properties of the interface are the key parameters of concern when considering the safety and durability of the structures in these permafrost regions. In this paper we present the results of measuring and analyzing the cyclic shear properties of an artificially frozen soil-structure interface; the experimental work being conducted on our self-developed, large-scale multi-functional direct shear apparatus (DDJ-1). These direct shear tests were conducted under conditions of constant normal stiffness, having a specific initial value for normal stresses (either 300, 500, or 700 kPa), and at a constant frozen temperature (i.e. - 6, -10, or -14 ℃) or a rising temperature (from -14 ℃ to - 2 ℃). Their cyclic shear stress and normal displacement were measured in 30 cycles for each of the constant frozen temperature settings, and in 13.25 cycles for the rising temperature. These test results show that: (1) The maximum shear stress is observed in the first cycle. This maximum shear stress is higher for lower frozen temperature and higher initial normal stress. Furthermore, the internal friction angle of the frozen soil-structure interface decreases with shear cycle and higher frozen temperature. (2) Under constant frozen temperature, the rates of increase of the normal displacement and normal stress slow down with cyclic loading time. However, these rates of increase are fast at the beginning, slow down, and then speed up again under the rising temperature. (3) The reversible normal displacement, expressed by the peak-to-trough distance of normal displacement, linearly increases with the initial normal stress when the frozen temperature is constant.
机译:冻土-结构界面是多年冻土区结构与土壤之间的关键连接部分。土-结构界面通常承受地震或风荷载。因此,当考虑这些永久冻土区域中结构的安全性和耐久性时,界面的循环剪切特性是需要关注的关键参数。在本文中,我们介绍了测量和分析人工冻结的土壤-结构界面的循环剪切特性的结果。我们自行研发的大型多功能直接剪切仪(DDJ-1)正在进行的实验工作。这些直接剪切试验是在恒定法向刚度,具有特定法向应力初始值(300、500或700 kPa)和恒定冻结温度(即-6,-10或-14℃)的条件下进行的)或温度升高(从-14℃到-2℃)。对于每个恒定的冷冻温度设置,均以30个循环测量其循环剪切应力和法向位移,而对于升高的温度,则以13.25个循环进行测量。这些测试结果表明:(1)在第一个循环中观察到最大剪切应力。对于较低的冷冻温度和较高的初始法向应力,此最大剪切应力较高。此外,冻土-结构界面的内摩擦角随剪切循环和较高的冷冻温度而减小。 (2)在恒定的冷冻温度下,法向位移和法向应力的增加速率随循环加载时间而减慢。但是,这些增加的速度在开始时很快,然后放慢下来,然后在温度上升时再次加快。 (3)当温度恒定时,可逆法向位移以法向位移的峰谷距离表示,随初始法向应力线性增加。

著录项

  • 来源
    《Cold regions science and technology》 |2014年第6期|52-62|共11页
  • 作者单位

    Department of Civil Engineering, Nanjing Forestry University, Nanjing 210037, Jiangsu, China,School of Engineering, Edith Cowan University, 270 Joondalup Drive, Joondalup, Perth, WA 6027, Australia;

    Department of Civil Engineering, Nanjing Forestry University, Nanjing 210037, Jiangsu, China;

    School of Mechanical and Chemical Engineering, The University of Western Australia, Crawley, Perth, WA 6009, Australia;

    School of Engineering, Edith Cowan University, 270 Joondalup Drive, Joondalup, Perth, WA 6027, Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Frozen soil-structure interface; Constant normal stiffness; Cyclic shear; Shear stress; Normal displacement;

    机译:冻土-结构界面;恒定的法向刚度;循环剪切剪应力;法向位移;
  • 入库时间 2022-08-17 13:46:43

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