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Journal of ZheJiang University (Engineering Science)  2019, Vol. 53 Issue (12): 2335-2341    DOI: 10.3785/j.issn.1008-973X.2019.12.010
Civil Engineering, Hydraulic Engineering     
Hydrodynamic characteristics of oscillating water column type breakwater
Peng WANG(),Zheng-zhi DENG*(),Chen WANG,Xiang REN
Ocean College, Zhejiang University, Zhoushan 316021, China
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Abstract  

An advanced oscillating-water-column-type (OWC-type) breakwater with a horizontal underneath plate was proposed. The hydrodynamic characteristics of the system under three different plate breadths and twelve different wave periods were studied using two-dimensional laboratory experiments. The effect of wave height on the hydrodynamic parameters of the breakwater model was explored by experiments. The experimental results show that the wave-damping ability of the breakwater was improved by setting the underneath plate reasonably: the transmission coefficient for incident wave periods within 1.6 s was less than 0.5, as the horizontal bottom plate width was equal to the width between the model plates; the wave transmission was less than 50% for incident wave periods within 2.2 s, as the horizontal bottom width was increased to twice the width between the model plates. The presence of the underneath plate is beneficial for the energy dissipation, which particularly improves the performance of the breakwater for the long-wave regimes. The change of wave height has little effect on the relevant hydrodynamic parameters.



Key wordsbreakwater      reflection coefficient      transmission coefficient      energy dissipation coefficient      oscillating water column      wave flume     
Received: 18 November 2018      Published: 17 December 2019
CLC:  O 352  
Corresponding Authors: Zheng-zhi DENG     E-mail: 21634092@zju.edu.cn;zzdeng@zju.edu.cn
Cite this article:

Peng WANG,Zheng-zhi DENG,Chen WANG,Xiang REN. Hydrodynamic characteristics of oscillating water column type breakwater. Journal of ZheJiang University (Engineering Science), 2019, 53(12): 2335-2341.

URL:

http://www.zjujournals.com/eng/10.3785/j.issn.1008-973X.2019.12.010     OR     http://www.zjujournals.com/eng/Y2019/V53/I12/2335


振荡水柱式防波堤的水动力特性

提出一种带水平底板的振荡水柱式新型防波堤. 借助二维物理波浪水槽,研究结构系统在3种不同水平底板宽度、12种不同波浪周期下的水动力特性. 通过实验探究波高对防波堤模型相关水动力参数的影响. 结果表明:合理布置水平底板能有效提升振荡水柱式防波堤的阻波性能;当水平底板宽度等于模型板间宽度时,入射波周期小于1.6 s的波浪的透射系数小于0.5;当水平底板宽度增大到2倍模型板间宽度时,入射波周期小于2.2 s的波浪的透射量小于50%. 水平底板的存在增加了系统的能量耗散,提高了系统对长波区间波浪的阻挡性能;波高的变化对相关水动力参数影响不大.


关键词: 防波堤,  反射系数,  透射系数,  能量耗散系数,  振荡水柱,  波浪水槽 
Fig.1 Schematic diagram of physical model experimental setup of oscillating water column breakwater
实验参数 符号 物理值 单位
目标波高 H 0.04,0.06 m
波周期 T 1.0,1.1,1.2,1.3,1.4,1.5,
1.6,1.8,2.0,2.2,2.4,2.6
s
波长 L 1.46,1.70,1.94,2.17,2.39,2.61,
2.83,3.27,3.70,4.12,4.53,4.94
m
相对水深 h/L 0.08~0.27 ?
波陡 H/h 0.008~0.041 ?
底板宽度 D 0(0B),0.18(1.0B),0.36(2.0B m
Tab.1 Test conditions and physical model geometric parameters of oscillating water column breakwater
Fig.2 Physical model with horizontal bottom width two times of width between plates
Fig.3 Wavefront duration curves of wave gauges at three different positions with period of 1.0 and 2.0 s without physical model
Fig.4 Variation of reflection coefficient with the relative depth under different horizontal bottom plate
Fig.5 Variation of transmission coefficient with relative depth under different widths of horizontal bottom plate
Fig.6 Variation of dissipation coefficient with the relative depth under different widths of horizontal bottom plate
Fig.7 Influence of wave height on hydrodynamic parametersrelated to reflection coefficient, transmission coefficient and dissipation coefficient under three horizontal bottom plate
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