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Large deformation analysis of granular materials with stabilized and noise-free stress treatment in smoothed particle hydrodynamics (SPH)

机译:平滑粒子水动力学稳定和无辐射应激处理的粒状材料大变形分析(SPH)

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摘要

This paper presents a new smoothed particle hydrodynamics (SPH) model for the large deformation analysis of granular materials with improved accuracy and stability. In order to remove the spurious stress profile during the post-failure process which is a common issue for the application of SPH to geotechnical problems, an innovative stress diffusion term is formulated. Further a new boundary treatment is proposed with the use of renormalization techniques to give a first-order consistent wall boundary conditions for geotechnical applications. This methodology is able to deal with complex geometries such as sharp corners. A number of test cases are considered to examine the robustness and accuracy of the proposed technique. Results show that the new boundary formulation is able to improve the accuracy of the solution even for a relatively coarse particle resolution. The stress diffusion term reduces the numerical noise that affects the stress under large deformations, resulting in a smooth stress field. The proposed SPH model is finally applied to the simulation of granular flow and tunnel face collapse, showing satisfactory agreement and convergence with experimental results.
机译:本文介绍了一种新的平滑粒子流体动力学(SPH)模型,具有改善精度和稳定性的粒状材料的大变形分析。为了在发生破坏过程中除去杂散应力分布,这是在岩土上应用SPH到岩土问题的常见问题,制定了一种创新的应力扩散项。此外,提出了利用重整化技术来提出新的边界处理,以给予岩土应用的一致壁边界条件。该方法能够处理复杂的几何形状,如尖角。考虑许多测试用例来检查所提出的技术的稳健性和准确性。结果表明,即使对于相对粗略的颗粒分辨率,新边界配方也能够提高溶液的准确性。应力扩散项减少了影响大变形下应力的数值噪声,从而产生平滑的应力场。最终应用所提出的SPH模型对粒状流动和隧道面塌陷的模拟,呈现出令人满意的协议和实验结果的收敛性。

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