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Prediction of Ship Motions Via a Three-Dimensional Time-Domain Method Following a Quad-Tree Adaptive Mesh Technique

机译:四维自适应网格技术之后的三维时域方法预测船舶运动

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A three-dimensional (3D) time-domain method is developed to predict ship motions in waves. To evaluate the Froude-Krylov (F-K) forces and hydrostatic forces under the instantaneous incident wave profile, an adaptive mesh technique based on a quad-tree subdivision is adopted to generate instantaneous wet meshes for ship. For quadrilateral panels under both mean free surface and instantaneous incident wave profiles, Froude-Krylov forces and hydrostatic forces are computed by analytical exact pressure integration expressions, allowing for considerably coarse meshes without loss of accuracy. And for quadrilateral panels interacting with the wave profile, F-K and hydrostatic forces are evaluated following a quad-tree subdivision. The transient free surface Green function (TFSGF) is essential to evaluate radiation and diffraction forces based on linear theory. To reduce the numerical error due to unclear partition, a precise integration method is applied to solve the TFSGF in the partition computation time domain. Computations are carried out for a Wigley hull form and S175 container ship, and the results show good agreement with both experimental results and published results.
机译:开发了三维(3D)时域方法以预测波浪中的船舶运动。为了评估Froude-Krylov(F-K)力和瞬时入射波型材的力和静液压,采用基于四树细分的自适应网格技术来为船产生瞬时湿网。对于平均自由表面和瞬时入射波轮廓下的四边形面板,通过分析精确的压力集成表达来计算FRoude-Krylov力和静液压,允许大量粗糙的网格而不会损失精度。并且对于与波形轮廓相互作用的四边形面板,在四曲树细分之后评估F-K和静水力。瞬态自由表面绿色功能(TFSGF)对于评估基于线性理论的辐射和衍射力是必要的。为了减少由于较明确的分区引起的数值误差,应用了精确的集成方法来解决分区计算时域中的TFSGF。计算用于Wigley Hull Form和S175集装箱船,结果表现出与实验结果和公布结果的良好一致性。

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