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Numerical simulation of floating bodies in extreme free surface waves

机译:极端自由面波中浮体的数值模拟

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In this paper, we use the in-house Computational Fluid Dynamics (CFD) flow code AMAZON-SC as a numerical wave tank (NWT) to study wave loading on a wave energy converter (WEC) device in heave motion. This is a surface-capturing method for two fluid flows that treats the free surface as contact surface in the density field that is captured automatically without special provision. A time-accurate artificial compressibility method and high resolution Godunov-type scheme are employed in both fluid regions (air/water). The Cartesian cut cell method can provide a boundary-fitted mesh for a complex geometry with no requirement to re-mesh globally or even locally for moving geometry, requiring only changes to cut cell data at the body contour. Extreme wave boundary conditions are prescribed in an empty NWT and compared with physical experiments prior to calculations of extreme waves acting on a floating Bobber-type device. The validation work also includes the wave force on a fixed cylinder compared with theoretical and experimental data under regular waves. Results include free surface elevations, vertical displacement of the float, induced vertical velocity and heave force for a typical Bobber geometry with a hemispherical base under extreme wave conditions.
机译:在本文中,我们将内部计算流体动力学(CFD)流程代码AMAZON-SC用作数值波箱(NWT),以研究波动能量在波能转换器(WEC)装置上的波载荷。这是一种用于两种流体流的表面捕获方法,该方法将自由表面视为密度场中的接触表面,无需特殊设置即可自动捕获。在两个流体区域(空气/水)中均采用了时间精确的人工压缩方法和高分辨率Godunov型方案。笛卡尔切割单元方法可以为复杂的几何体提供边界拟合的网格,而无需为移动几何体全局或局部重新网格化,只需要更改身体轮廓处的切割单元数据即可。在空的NWT中规定了极端波边界条件,并在计算作用在浮动Bobber型设备上的极端波之前将其与物理实验进行了比较。验证工作还包括将固定圆柱体上的波浪力与规则波浪下的理论和实验数据进行比较。结果包括自由表面高程,浮子的垂直位移,感应的垂直速度以及在极端波浪条件下具有半球形基底的典型Bobber几何形状的升力。

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