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Offshore Anchor Penetration in Sands—Granular Simulations

机译:砂中的海上锚固穿透—颗粒模拟

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Torpedo anchors are a viable approach for mooring marine hydrokinetic (MHK) energy devices to the seafloor. These anchors will serve to maintain station and to provide the reaction force for the MHK device. The ability of the anchor to perform these duties is a strong function of its penetration depth during installation. This is a large-strain problem not amenable to typical continuum numerical approaches. In the current work, we propose that the discrete element method (DEM) is a more appropriate tool to investigate the shallow penetration of torpedo anchors in sands. The effects of anchor mass, impact velocity, and anchor geometry are considered in the DEM simulations. The relative maximum penetration depths under these factors are quantified and presented in the paper. Comparisons are also made between DEM simulations and the empirical equation developed by Young (1967). Granular material response at the microscale during penetration are used to provide insight into system response.
机译:鱼雷锚是将海洋水动力(MHK)能源装置系泊至海底的一种可行方法。这些锚将用于维持驻地并为MHK设备提供反作用力。锚具履行这些职责的能力是其在安装过程中穿透深度的强大功能。这是一个大应变问题,不适合典型的连续数值方法。在当前的工作中,我们建议离散元法(DEM)是研究鱼雷锚在沙子中的浅穿透力的一种更合适的工具。 DEM仿真中考虑了锚质量,冲击速度和锚几何形状的影响。在这些因素下的相对最大穿透深度被量化并在论文中给出。还比较了DEM模拟和Young(1967)提出的经验方程。渗透过程中微观尺度上的颗粒物质响应可用于深入了解系统响应。

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