波浪中多腔室OWC装置水动力性能的数值分析

Jeong-Seok Kim, B. Nam
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引用次数: 2

摘要

近年来,为了有效利用海陆结构体有限的空间,对多腔室振荡水柱型波浪能转换器(OWC-WECs)进行了各种研究。本文基于数值波槽,对单、双、三种OWC室进行了数值研究,考察了多水柱的水动力性能和能量转换特性。采用基于有限元法的数值波槽求解了拉氏方程边值问题。通过与以往实验研究的实测数据对比,验证了本文数值方法的有效性。我们进行了一系列的数值模拟,观察到单室晃动模式的水柱运动可以转变为多个OWC室不同阶段的活塞运动。因此,活塞在多个腔室中的运动可以在特定的谐振频率下产生相当大的气流。此外,OWC腔室的划分减少了设备最终输出功率的随时间变化。结果表明,多腔室的应用提高了波能转换器的能量转换性能,降低了波能转换器的变异性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Analysis for Hydrodynamic Performance of OWC Devices with Multiple Chambers in Waves
In recent years, various studies have been conducted on oscillating-water-column-type wave energy converters (OWC-WECs) with multiple chambers with the objective of efficiently utilizing the limited space of offshore/onshore structures. In this study, a numerical investigation based on a numerical wave tank was conducted on single, dual, and triple OWC chambers to examine the hydrodynamic performances and the energy conversion characteristics of the multiple water columns. The boundary value problem with the Laplace equation was solved by using a numerical wave tank based on a finite element method. The validity of the current numerical method was confirmed by comparing it with the measured data in the previous experimental research. We undertook a series of numerical simulations and observed that the water column motion of sloshing mode in a single chamber can be changed into the piston motion of different phases in multiple OWC chambers. Therefore, the piston motion in the multiple chambers can generate considerable airflow at a specific resonant frequency. In addition, the division of the OWC chamber results in a reduction of the time-dependent variability of the final output power from the device. As a result, the application of the multiple chambers leads to an increase of the energy conversion performance as well as a decrease of the variability of the wave energy converter.
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