Broadband wave conversion by a “Pan Flute”-type multi-oscillating-water-column (M−OWC) breakwater system

IF 9.9 1区 工程技术 Q1 ENERGY & FUELS
Yinong Hu , Yong Cheng , Saishuai Dai , Zhiming Yuan , Atilla Incecik
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Abstract

Majority of wave energy converters (WEC) have a relatively narrower capture due to their design philosophy, which focus on matching WEC’s natural frequency to a single peak frequency of a seastate spectrum. This paper introduces an innovative “Pan Flute”-type WEC embedded into a breakwater. This design consists multiple oscillating water column (OWC) units, each with a distinguished natural frequency. By strategically tuning these frequencies to span a broader sea-state spectrum rather than merely matching the peak frequency, the system achieves a wider capture bandwidth. An experimentally validated Computational Fluid Dynamics (CFD) methodology was adopted to assess the hydrodynamic performance of the proposed design in irregular waves. This new concept possesses different resonant periods of internal water column to reasonably absorb short-, moderate-, and long-period components of irregular waves by facing-wave, central and rear chambers, respectively. Additionally, the multi-chamber design transforms the sloshing motion of water column into the piston-type motion, amplifying the wave elevation inside sub-chambers as well as accelerating the vortex detachment from the chamber-wall end. Consequently, the hydrodynamic efficiency is guaranteed to be higher than 0.5 for all wave periods, and its maximum value achieves 0.82. The wave attenuation is also improved, especially for long-period waves where there is a maximum 47.8% of reduction compared with S-OWC system. The varying-draft M−OWC system adopting separate PTO units is found to be superior to adopt a corporate PTO. It is practically possible to design the optimised number and draft of sub-chambers to obtain a broad harvesting width of wave energy. These findings promote the WEC-breakwater systems to be deployed in extensive sea areas regardless of energy density.

Abstract Image

潘笛 "型多振荡水柱(M-OWC)防波堤系统的宽带波浪转换功能
由于其设计理念,大多数波浪能转换器(WEC)的捕获范围相对较窄,其重点是将WEC的固有频率与海相频谱的单个峰值频率相匹配。本文介绍了一种新型的嵌入防波堤的“盘槽”型WEC。该设计由多个振荡水柱(OWC)单元组成,每个单元都具有不同的固有频率。通过战略性地调整这些频率以跨越更宽的海况频谱,而不仅仅是匹配峰值频率,系统实现了更宽的捕获带宽。采用实验验证的计算流体动力学(CFD)方法来评估所提出的设计在不规则波浪中的水动力性能。这种新概念具有不同的内部水柱共振周期,分别通过面波室、中央室和后室合理地吸收不规则波的短周期、中周期和长周期分量。此外,多腔室的设计将水柱的晃动运动转化为活塞式运动,放大了子腔室内的波浪高度,加速了涡流从腔壁端分离。从而保证了各波周期的水动力效率均大于0.5,其最大值为0.82。波的衰减也得到了改善,特别是对长周期波的衰减,与S-OWC系统相比,最大衰减47.8%。采用单独PTO单元的变草案M - OWC系统优于采用公司PTO。设计优化的子室数量和吃水以获得较宽的波能收集宽度实际上是可能的。这些发现促进了wec防波堤系统在广泛的海域部署,无论能量密度如何。
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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来源期刊
Energy Conversion and Management
Energy Conversion and Management 工程技术-力学
CiteScore
19.00
自引率
11.50%
发文量
1304
审稿时长
17 days
期刊介绍: The journal Energy Conversion and Management provides a forum for publishing original contributions and comprehensive technical review articles of interdisciplinary and original research on all important energy topics. The topics considered include energy generation, utilization, conversion, storage, transmission, conservation, management and sustainability. These topics typically involve various types of energy such as mechanical, thermal, nuclear, chemical, electromagnetic, magnetic and electric. These energy types cover all known energy resources, including renewable resources (e.g., solar, bio, hydro, wind, geothermal and ocean energy), fossil fuels and nuclear resources.
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