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首页> 外文期刊>International Journal of Multiphase Flow >A Cartesian grid based multiphase flow model for water impact of an arbitrary complex body
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A Cartesian grid based multiphase flow model for water impact of an arbitrary complex body

机译:基于笛卡尔网格的多相流动模型,用于任意复杂的身体的水冲击

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A Cartesian grid based multiphase flow model is developed to simulate water impact problems. This model is capable of simulating complex moving bodies interacting with a highly non-linear free surface such as jet flow or air cushion. A radial basis function based ghost cell method (RBFGCM) is developed to treat the arbitrary moving body on a fixed Cartesian grid. The complex moving boundary is tracked with the RBF and ghost cells are identified based on the signed function property of the RBF. To capture large deformation of the free surface, a gradient-augmented level set (GALS) method is used. Sub-grid resolution is obtained by simultaneously evolving both the level set (LS) function and its gradient information. Also, a simple distance function assignment method is developed to treat the contact boundary between the free surface and the solid surface. The accuracies of the ghost cell method (GCM) and the GALS method are validated by inline oscillation of a cylinder and horizontal sloshing cases, respectively. Then, the water impact of an arbitrary body is simulated. The cases include the water entry of a free falling multihull and the water entry of a bow-flare ship section with various roll angles. The accuracy of the proposed multiphase flow model and its capability are examined by comparing the present results to experimental and numerical results. Also, the results show that the present method can more accurately predict the slamming load in the presence of flow separation and air cushion than the smoothed particle hydrodynamics (SPH) based single-phase flow model and the boundary element method (BEM). Furthermore, the influence of roll angles on the slamming load and the free surface are studied. (C) 2018 Published by Elsevier Ltd.
机译:基于笛卡尔网格的多相流动模型开发出来模拟水影响问题。该模型能够模拟与高度非线性自由表面相互作用的复杂的移动体,例如喷射流或空气垫。开发了一种径向基本功能基于幽灵细胞方法(RBFGCM)以在固定的笛卡尔栅格上处理任意移动体。通过RBF跟踪复杂的移动边界,并基于RBF的签名函数属性来识别幽灵小区。为了捕获自由表面的大变形,使用梯度增强水平集(GALS)方法。通过同时演化级别集(LS)函数及其梯度信息来获得子网格分辨率。而且,开发了简单的距离功能分配方法以在自由表面和固体表面之间处理接触边界。通过轮缸和水平晃动盒的内联振荡验证了幽灵细胞方法(GCM)和GALS方法的准确性。然后,模拟任意体的水撞击。该病例包括具有各种滚动角度的自由下降多壳和弓炬船段的水处理。通过将当前结果与实验性和数值结果进行比较来检查所提出的多相流模型及其能力的准确性。此外,结果表明,本方法可以更准确地预测流动分离和气垫的存在而不是平滑的粒子流体动力学(SPH)的单相流动模型和边界元素方法(BEM)。此外,研究了辊角对撞击载荷和自由表面的影响。 (c)2018由elestvier有限公司出版

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