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Experimental investigation of a land-based dual-chamber OWC wave energy converter

机译:陆基双室OWC波能转换器的实验研究

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Extensive investigation on wave energy converters (WEC) that convert wave power into electricity is required to improve competitiveness of wave energy, one of the most promising renewable energy resources. Better hydrodynamic performance should enable wave devices to compete favorably with conventional power plants in the near future. In this study the hydrodynamic performance of a land-based dual-chamber Oscillating Water Column (OWC) device is investigated experimentally, with emphasis on its overall performance and respective performance of the two sub-chambers of the system. The effects of the chamber breadth and the barrier wall draft on the hydrodynamic efficiency, the free surface elevation and the air pressure inside the chambers are investigated over a wide range of wave periods with a constant wave amplitude. Numerical simulations using fully nonlinear numerical wave tanks (NWTs) within the framework of potential flow theory are also carried out to cross-check the results, and help to further understand the experimental observations. It is found that both the maximum efficiency and the range of wave frequencies that leads to a higher rate of wave energy absorption, i.e. the effective frequency bandwidth, increase in the dual-chamber OWC system when compared to an equivalent typical single-chamber OWC device. The overall efficiency of the system is found to be insensitive to the variation of the sub-chamber breadth, while the efficiency of the two sub-chamber increases with its breadth when the total chamber breadth is kept the same. Additionally, the hydrodynamic efficiency is found to decrease with increasing barrier wall draft. The rear chamber (i.e., on the landward side) outperforms the front chamber (i.e., on the seaward side) for most of the wave frequencies investigated in this study, especially for the wave frequency that is at or close to the resonance frequency of the system.
机译:为了提高波浪能的竞争力,波浪能转换器(WEC)将波浪能转化为电能,需要进行广泛的研究,波浪能是最有前途的可再生能源之一。更好的水动力性能将使波浪设备在不久的将来能与传统发电厂竞争。在这项研究中,对陆基双室振荡水柱(OWC)装置的水动力性能进行了实验研究,重点是其整体性能以及系统两个子室的各自性能。在一定的波幅范围内,在宽广的波浪周期范围内,研究了腔室宽度和阻隔壁吃水对腔室内部流体力学效率,自由表面高度和气压的影响。在势流理论的框架内,还使用完全非线性的数值波箱(NWT)进行了数值模拟,以交叉检验结果,并有助于进一步理解实验观察结果。已发现,与等效的典型单腔OWC设备相比,双腔OWC系统的最大效率和波频率范围都会导致更高的波能量吸收率,即有效频率带宽增加。 。发现系统的整体效率对子腔室宽度的变化不敏感,而当总腔室宽度保持不变时,两个子腔室的效率随其腔室宽度而增加。另外,发现流体动力学效率随着隔离壁吃水的增加而降低。在本研究中研究的大多数波频率中,后腔(即在陆侧)的性能优于前腔(即在海侧),特别是对于处于或接近于共振频率的波频率。系统。

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