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Discussion on size effect of footing in ultimate bearing capacity of sandy soil using rigid plastic finite element method

机译:用刚性塑性有限元方法探讨立足尺寸对砂土极限承载力的影响。

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摘要

Currently, many formulas are used to calculate the ultimate bearing capacity. However, these formulas have disadvantages when being applied in practice since they can only be applied for calculating simple footing shapes and uniform grounds. Most formulas do not take into account the size effect of the footing on the ultimate bearing capacity, except for the formula by the Architectural Institute of Japan. The advantage of using the finite element method (FEM) is its applicability to non-uniform grounds, for example, multi-layered and improved grounds, and to complicated footing shapes under three-dimensional conditions. FEM greatly improves the accuracy in estimating the ultimate bearing capacity. The objective of this study is to propose a rigid plastic constitutive equation using the non-linear shear strength property against the confining pressure. The constitutive equation was built based on experiments for the non-linear shear strength property against the confining pressure reported by Tatsuoka and other researchers. The results from tests on Toyoura sand and various other kinds of sand indicated that, although the internal friction angle differs among sandy soils, the normalized internal friction angle decreases with an increase in the normalized first stress invariant for various sands despite dispersion in the data. This property always holds irrespective of the reference value of the confining pressure in the normalization of the internal friction angle. The applicability of the proposed rigid plastic equation was proved by comparing it to the ultimate bearing capacity formula by the Architectural Institute of Japan, which is an experimental formula that takes into account the size effect of the footing. The results of rigid plastic finite element method (RPFEM) with the proposed constitutive equation were found to be similar to those obtained with the Architectural Institute of Japan's formula. It is clear that RPFEM, with the use of the non-linear shear strength against the confining pressure, provides good estimations of the ultimate bearing capacity of the footing by taking account of the size effect of the footing. (C) 2016 The Japanese Geotechnical Society. Production and hosting by Elsevier B.V. All rights reserved.
机译:当前,许多公式用于计算极限承载力。但是,由于这些公式只能用于计算简单的立足点形状和均匀的地面,因此在实际应用中存在缺点。除了日本建筑学会的公式外,大多数公式都没有考虑基础尺寸对极限承载力的影响。使用有限元方法(FEM)的优点是它适用于非均匀地面,例如多层和改良地面,以及在三维条件下的复杂基础形状。 FEM极大地提高了估算极限承载力的准确性。这项研究的目的是利用非线性剪切强度特性对围压提出一个刚性塑性本构方程。本田方程是根据龙冈(Tatsuoka)和其他研究人员报道的针对围压的非线性抗剪强度特性实验建立的。对Toyoura砂和各种其他砂的测试结果表明,尽管沙土之间的内摩擦角不同,但尽管数据分散,但归一化内摩擦角随各种砂的归一化第一应力不变性的增加而减小。在内部摩擦角的归一化中,该属性始终保持不变,而与约束压力的参考值无关。通过将其与日本建筑学会的极限承载力公式进行比较,证明了所提出的刚性塑性方程的适用性。该公式是考虑了立足尺寸影响的实验公式。刚提出的本构方程的刚性塑料有限元方法(RPFEM)的结果与日本建筑学会的公式得出的结果相似。显然,RPFEM通过使用针对围压的非线性剪切强度,可以通过考虑基础尺寸的影响,很好地估算基础的极限承载力。 (C)2016年日本岩土学会。 Elsevier B.V制作和托管。保留所有权利。

著录项

  • 来源
    《Soils and foundations》 |2016年第1期|93-103|共11页
  • 作者单位

    Ho Chi Minh City Univ Transport, Dept Civil Engn, Ho Chi Minh, Vietnam|Nagaoka Univ Technol, Dept Energy & Environm Engn, 1603-1 Kamitomioka, Nagaoka, Niigata 9402188, Japan;

    Nagaoka Univ Technol, Dept Civil & Environm Engn, 1603-1 Kamitomioka, Nagaoka, Niigata 9402188, Japan;

    Sato Kogyo Ltd Co, 4-12-19 Honcho, Tokyo 1038639, Japan;

    Hokkaido Univ, Div Field Engn Environm, Kita Ku, 13 Kita,8 Nishi, Sapporo, Hokkaido 0608628, Japan;

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

    Ultimate bearing capacity; Size effect; Stree-dependent shear strength; Finite element method;

    机译:极限承载力;尺寸效应;与路面有关的抗剪强度;有限元法;

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