Extended Applications of the δ-SPH Model for the Numerical Study of Fluid–Soil Interactions

Zi-Yang Zhan, Peng-Nan Sun, Xiao-Ting Huang
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Abstract

The fluid–soil interactions play a significant role in coastal and ocean engineering applications. However, there are still some complex mechanical problems with large deformations of water–soil interfaces to be solved. As a particle-based Lagrangian method, Smoothed Particle Hydrodynamics (SPH) is good at solving multiphase problems with large deformations of boundaries or interfaces. Therefore, in this work, the [Formula: see text]-SPH method is extended for the simulation of fluid–soil interacting problems. First, based on the weakly compressible assumption, the water is modeled as a viscous fluid while the soil is considered as a material with elastic–perfectly plastic behaviors. The [Formula: see text]-SPH method is implemented on the two phases separately, while the stress diffusive term only acts on the soil. The seepage force is introduced to model the interaction between two phases. After that, several numerical test cases with small to large interface deformations are presented. It is shown that the fluid–soil interacting model based on the [Formula: see text]-SPH model gives satisfying results compared with experimental data. Finally, the model is further extended for the simulation of vertical or oblique water jet scouring problems which demonstrates the potential applications of the SPH model for complex engineering problems.
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流体与土壤相互作用数值研究中 δ-SPH 模型的扩展应用
流体-土壤相互作用在海岸和海洋工程应用中发挥着重要作用。然而,仍有一些水土界面大变形的复杂力学问题有待解决。作为一种基于粒子的拉格朗日方法,平滑粒子流体动力学(SPH)擅长解决边界或界面大变形的多相问题。因此,在这项工作中,[公式:见正文]-SPH 方法被扩展用于模拟流体-土壤相互作用问题。首先,基于弱可压缩假设,水被模拟为粘性流体,而土壤被视为具有弹性-完全塑性行为的材料。公式:见正文]-SPH 方法分别用于这两个阶段,而应力扩散项仅作用于土壤。引入了渗流力来模拟两相之间的相互作用。随后,介绍了几个界面变形由小到大的数值测试案例。结果表明,与实验数据相比,基于[公式:见正文]-SPH 模型的流体-土壤相互作用模型给出了令人满意的结果。最后,该模型被进一步扩展用于模拟垂直或斜向水射流冲刷问题,从而证明了 SPH 模型在复杂工程问题中的潜在应用。
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Extended Applications of the δ-SPH Model for the Numerical Study of Fluid–Soil Interactions SPH Simulation of Solitary Wave Interaction with Cylinder
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