An Open-Source Python-Based Boundary-Element Method Code for the Three-Dimensional, Zero-Froude, Infinite-Depth, Water-Wave Diffraction-Radiation Problem
Savin Viswanathan, C. Holden, O. Egeland, M. Greco
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引用次数: 1
Abstract
In this paper, a new open-source implementation of the lower-order, 3-D Boundary Element Method (BEM) of solution to the deep-water, zero Froude-number wave-body interaction problem is described. A validation case for OMHyD, the new open-source package, is included, where the outputs are compared to results obtained using the widely used frequency-domain hydrodynamic analysis package ANSYS-AQWA. The theory behind the solution to the diffraction-radiation problem is re-visited using the Green function method. The Hess and Smith panel method is then extended to the case of a floating object using the image-source to impose the wall condition at the free-surface, and a wavy Green function component to account for presence of free-surface waves. An algorithm for computer implementation of the procedure is developed and subsequently implemented in PYTHON. The wavy part of the Green function is determined using a verified and published FORTRAN code by Teleste and Noblesse, wrapped for PYTHON using the Fortran to Python (F2PY) interface. Results are presented for the various stages of implementation viz. panelling, body in infinite fluid domain, effect of the free-surface, and effect of surface-waves. The hydrodynamic coefficients obtained from this preliminary frequency-domain analysis are shown to be in satisfactory agreement with ANSYS-AQWA results. Conclusions are drawn based on the performance of the code, followed by suggestions for further improvement by including the removal of irregular-frequencies, multi-body interactions, and bottom interference, which are not considered in the present implementation.
本文描述了求解深水零弗鲁德数波体相互作用问题的低阶三维边界元法(BEM)的一种新的开源实现。其中包括一个新的开源包OMHyD的验证案例,其中输出与使用广泛使用的频域水动力分析包ANSYS-AQWA获得的结果进行比较。用格林函数法重新考察了衍射辐射问题的解的理论。然后将Hess和Smith面板方法扩展到浮动物体的情况,使用图像源在自由表面施加壁面条件,并使用波浪格林函数分量来解释自由表面波的存在。开发了用于计算机实现该过程的算法,并随后在PYTHON中实现。Green函数的波浪部分是由Teleste和Noblesse使用经过验证和发布的FORTRAN代码确定的,该代码使用FORTRAN to PYTHON (F2PY)接口包装为PYTHON。给出了实现的各个阶段的结果,即面板,无限流体域中的体,自由表面的影响,以及表面波的影响。初步频域分析得到的水动力系数与ANSYS-AQWA计算结果吻合较好。根据代码的性能得出结论,然后提出进一步改进的建议,包括去除不规则频率、多体相互作用和底部干扰,这些在目前的实现中没有考虑到。