徐涛龙, 邵常宁, 兰旭彬, 丁鸿超. 粒子法和离散元法在管土耦合分析中的应用[J]. 工程力学, 2022, 39(S): 239-249. DOI: 10.6052/j.issn.1000-4750.2021.06.S048
引用本文: 徐涛龙, 邵常宁, 兰旭彬, 丁鸿超. 粒子法和离散元法在管土耦合分析中的应用[J]. 工程力学, 2022, 39(S): 239-249. DOI: 10.6052/j.issn.1000-4750.2021.06.S048
XU Tao-long, SHAO Chang-ning, LAN Xu-bin, DING Hong-chao. APPLICATION OF PARTICLE METHOD AND DISCRETE ELEMENT METHOD IN PIPE-SOIL COUPLING ANALYSIS[J]. Engineering Mechanics, 2022, 39(S): 239-249. DOI: 10.6052/j.issn.1000-4750.2021.06.S048
Citation: XU Tao-long, SHAO Chang-ning, LAN Xu-bin, DING Hong-chao. APPLICATION OF PARTICLE METHOD AND DISCRETE ELEMENT METHOD IN PIPE-SOIL COUPLING ANALYSIS[J]. Engineering Mechanics, 2022, 39(S): 239-249. DOI: 10.6052/j.issn.1000-4750.2021.06.S048

粒子法和离散元法在管土耦合分析中的应用

APPLICATION OF PARTICLE METHOD AND DISCRETE ELEMENT METHOD IN PIPE-SOIL COUPLING ANALYSIS

  • 摘要: 为克服管土耦合分析中土体分层、压缩、运移、流变等大变形问题,传统有限元分析技术需借助新的土体模拟及耦合方法。其中,基于纯拉格朗日的粒子法(PM)和细观离散单元理论的离散元法(DEM),因其在土体大变形领域的独特优势而得到广泛关注。针对管道沿线最常见的地质灾害和第三方扰动行为,利用光滑粒子流体动力学(SPH)分析土质滑坡大变形、黏性泥石流冲刷下管道的受力变形特征,获取管道受土中近场爆炸冲击下的动态响应规律,精确模拟了爆炸土中成腔、土体层裂、压缩等现象,联合离散元法中的颗粒流软件(PFC)与三维有限差分程序(FLAC 3D)再现挖机多铲掘进下土体的运移过程,得到管体的载荷累积效应。多次实践表明:以SPH为代表的粒子法和以PFC为代表的离散元法均能较好解决管土耦合分析中土体的非线性大变形问题,引入流体动力学手段,达到了土体变形研究方法多元化的目的,为进一步研究土中多物理场耦合响应机理奠定了基础。

     

    Abstract: In order to overcome the problems of soil stratification, compression, migration, rheology and other large deformation in pipe soil coupling analysis, the traditional finite element analysis technology needs the help of new soil simulation and coupling methods. Among them, particle method (PM) based on pure Lagrangian and, discrete element method (DEM) based on meso discrete element theory are widely adopted because of their unique advantages in the field of large deformation of soil. Aiming at the most common geological disasters and the third-party disturbance along the pipeline, smoothed particle hydrodynamics (SPH) was used to analyze the stress and deformation characteristics of the pipeline under the large deformation of soil landslide and the erosion of viscous debris flow. The dynamic response rules of the pipeline under the impact of near-field explosion in soil were obtained. The cavitation, soil spalling, compression and other phenomena in explosive soil were accurately simulated, the particle flow software (PFC) and the three-dimensional finite difference program (FLAC 3D) of the discrete element method are combined to reproduce the soil movement process under a multi-shovel excavation, and the load accumulation effect of the pipe body is obtained. Many practices show that the particle method represented by SPH and the discrete element method represented by PFC can better solve the nonlinear large deformation problem of soil in the pipe soil coupling analysis. The fluid dynamics method is introduced to achieve the purpose of diversification of soil deformation research methods, which lays a foundation for further research on the coupling response mechanism of multi physical fields in soil.

     

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