Lipwall effects on a Shore-Front Oscillating Water Column (OWC) based on DBEM and CFD approaches

Kumar Narendran, Vijay K G
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Abstract

The oscillating water column (OWC) is an economical and feasible type of wave energy converter with minimal maintenance costs which have been widely investigated. In this study, the effect of lipwalls for a shore-front OWC is investigated using Dual Boundary Equation Method (DBEM) and Computational Fluid Dynamics (CFD) approaches. The boundary value problem is solved using the DBEM method within the framework of linear water wave theory. Whilst in the CFD approach, the volume of fluid (VOF) approach is used for simulating the numerical wave tank, with appropriate boundary conditions and regular wave inlet. The DBEM approach is beneficial to understand the complex phenomena inside the chamber viz. radiation conductance and susceptance. It is inferred that case-B is found to exhibit better performance for a wider range of non-dimensional wave frequencies due to its wave trapping configuration where the position of the lower lipwall is orthogonal. The CFD studies provide interesting insights on the optimal damping ratio concerning wave amplification factor at higher relative water depths, power output, and correlation of phase difference. Besides, the study reveals that the pressure and wave elevation inside the chamber is associated with the inhalation and exhalation process of air is attributed to the lower half of the lipwall.
基于 DBEM 和 CFD 方法的 Lipwall 对岸前振荡水柱 (OWC) 的影响
振荡水柱(OWC)是一种经济可行且维护成本最低的波浪能转换器,已被广泛研究。本研究采用双边界方程法(DBEM)和计算流体动力学(CFD)方法,研究了唇墙对岸前 OWC 的影响。边界值问题是在线性水波理论框架内使用 DBEM 方法解决的。而在 CFD 方法中,则使用流体体积 (VOF) 方法模拟数值波浪槽,并采用适当的边界条件和规则的波浪入口。DBEM 方法有利于理解舱内的复杂现象,即辐射传导和感抗。根据推断,由于下唇壁的位置是正交的,因此情况 B 在更宽的非维度波频率范围内表现出更好的性能。CFD 研究提供了有关较高相对水深下波浪放大系数、功率输出和相位差相关性的最佳阻尼比的有趣见解。此外,研究还揭示了腔室内的压力和波浪升高与空气的吸入和呼出过程有关,这归因于唇壁的下半部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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