Hydrodynamic performance of a pile-supported oscillating water column breakwater in front of a partially reflecting seawall

Yang Zhang, Wenjin Zhu, Qing Xu, Dekun Kong, Xiaotian Dong
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Abstract

Integrating wave energy devices with breakwaters can offer an innovative and sustainable approach by combining wave power extraction with wave attenuation. The performance of this integrated system in offshore areas is influenced by the unique characteristics of the coastline. In this paper, a semi-analytical solution was developed using the matching eigenfunction method for the oscillating water column device integrated into a pile-supported breakwater in front of a partially reflective seawall. The model was validated through the energy conservation law, the Haskind relationship, and experimental data. Detailed examinations were conducted on the effects of the seawall's reflection coefficients, the distance between the system and the seawall, the wall draft, and the chamber breadth on hydrodynamic performance. Results show that the presence of the seawall significantly influences hydrodynamic coefficients (hydrodynamic efficiency, reflection coefficient, the relative transmitted amplitude, etc.), accompanied by the piston and sloshing mode resonances inside the chamber and the confined area between the system and the seawall. Due to energy dissipated by a partially reflective seawall, the magnitude of those hydrodynamic coefficients is mitigated, together with the piston and sloshing mode resonances inside the air chamber. The cancellation of the sloshing mode resonance inside the confined area is observed for the smaller seawall's reflection coefficient. The maximum and minimum hydrodynamic efficiency occur when the system is arranged at the wave nodes and antinodes of the formed standing wave field. Lower wave reflection and better wave power extraction can be achieved by properly adjusting the chamber drafts and breadths.
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部分反射海堤前的桩支振荡水柱防波堤的水动力性能
将波浪能装置与防波堤结合起来,可以提供一种创新的、可持续的方法,将波浪能提取与波浪衰减结合起来。这种集成系统在近海地区的性能受到海岸线独特特征的影响。本文采用匹配特征函数法,为集成到部分反射海堤前的桩基支撑防波堤中的振荡水柱装置开发了一个半解析解。模型通过能量守恒定律、哈斯金德关系和实验数据进行了验证。详细研究了海堤的反射系数、系统与海堤之间的距离、海堤吃水和舱室宽度对水动力性能的影响。结果表明,海堤的存在会显著影响水动力系数(水动力效率、反射系数、相对传输振幅等),同时还会影响舱内的活塞和荡流模式共振以及系统与海堤之间的密闭区域。由于部分反射海堤的能量消耗,这些流体动力系数的大小以及气室内的活塞和荡漾模式共振都得到了缓解。海堤反射系数越小,密闭区域内的荡流模式共振就越小。当系统布置在形成的驻波场的波节点和反节点处时,水动力效率最高和最低。通过适当调整腔室的吃水和宽度,可以实现更低的波反射和更好的波功率提取。
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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