桩支owc型防波堤水动力性能试验研究

Yusuf Almalki, I. Karmpadakis, Chris Swan
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摘要

本文研究了桩支防波堤结构中振荡水柱结构的优化设计。这是通过在多种配置中进行大量按比例的物理模型测试和有系统地改变关键设备参数来实现的。已经研究的关键方面包括:(a)防波堤结构的几何特征,(b) OWC的气动效率,(c) OWC室的几何形状和(d) OWC室在防波堤内的相对位置。本文考虑不同陡度和有效水深的(单色)规则波作为入射波条件。通过量化相关传输系数和功率输出指标,评估设计结构在护岸能力和波浪能提取方面的效率。这是通过使用组合配置和互补的测量设备来实现的,例如波计阵列、压力传感器和高清摄像机。研究结果表明,系统地改进几何参数可以大大提高桩承OWC防波堤的整体水动力效率。此外,研究发现,在防波堤前设置一个腔室,相对腔室宽度为0.67,在能量提取效率和降低传递系数方面都优于更宽的配置。综上所述,本研究深入分析了防波堤集成OWC的关键设计参数、效率和护岸潜力的影响。
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Experimental investigation on the hydrodynamic performance of a pile-supported OWC-type breakwater
 The present study considers the design optimisation of an Oscillating Water Column (OWC) incorporated into a pile-supported breakwater structure. This has been achieved by performing a substantial number of scaled physical model tests and a methodical variation of key device parameters within multiple configurations. The key aspects that have been investigated include: (a) the geometric characteristics of the breakwater structure, (b) the pneumatic efficiency of the OWC, (c) the geometry of the OWC chamber and (d) the relative position of the OWC chamber within the breakwater. The present work considers (monochromatic) regular waves of varying steepness and effective water depth as incident wave conditions. The efficiency of the designed structure in terms of shore protection capacity and wave energy extraction was assessed by quantifying relevant transmission coefficients and the power output metrics. This has been achieved by using a combination of collocated and complementary measuring devices, such as arrays of wave gauges, pressure transducers and a high-definition video camera. The study concluded that systematic refinement of the geometrical parameters can substantially enhance the overall hydrodynamic efficiency of a pile-supported OWC breakwater. Additionally, it was found that a configuration featuring a chamber positioned in front of the breakwater, with a relative chamber breadth of 0.67, outperforms wider breadth configurations in terms of both energy extraction efficiency and reduction of the transmission coefficient. Taken together, the present study provides an in-depth analysis of the effects of key design parameters of a breakwater-integrated OWC, its efficiency and shore protection potential.
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