Impact of a vertical porous barrier in the reflection of water waves and mitigation of wave forces on a rigid floating structure in the presence of an elevated bottom and a trench

IF 2.5 3区 工程技术 Q2 MECHANICS
Shilpi Jain, Swaroop Nandan Bora
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引用次数: 0

Abstract

This study deals with an oblique wave interaction by a floating rigid rectangular structure in the presence of a porous barrier which is placed in front of the floating structure. By considering the bottom topography as an elevated-type and a trench-type bottom, it is assumed that the train of water waves interacts with the porous barrier and the floating structure due to which it undergoes partial reflection. The boundary value problem in the fluid domain, which is split into five sub-regions, is solved by the utilization of separation of variables technique and eigenfunction expansion. The impact of the porous barrier and bottom topography on the reflection coefficient and hydrodynamic forces acting on the floating structure is discussed. As the distance of the porous barrier from the floating structure increases, an oscillatory pattern in the reflection coefficient is observed. Further, when the height of the elevated bottom or trench-bottom increases, the reflection coefficient increases in both cases; the reflection is higher in the presence of a trench than that due to the elevated sea-bed. The obtained results are validated against an established result which shows a very close match.

垂直多孔屏障对水波反射的影响,以及在底部隆起和沟槽存在的情况下减轻波力对刚性浮动结构的影响
本研究讨论的是刚性矩形浮动结构与斜波的相互作用,浮动结构前方设有多孔屏障。通过考虑高架型和沟槽型底部地形,假定水波列与多孔屏障和浮动结构相互作用,从而发生部分反射。流体域分为五个子区域,利用变量分离技术和特征函数展开求解流体域中的边界值问题。讨论了多孔屏障和底部地形对浮动结构的反射系数和水动力的影响。随着多孔屏障与漂浮结构距离的增加,反射系数出现了振荡模式。此外,当高架海底或海沟海底的高度增加时,两种情况下的反射系数都会增加;海沟的反射系数高于高架海底的反射系数。所获得的结果与既定结果进行了验证,结果显示两者非常接近。
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
CiteScore
5.90
自引率
3.80%
发文量
127
审稿时长
58 days
期刊介绍: The European Journal of Mechanics - B/Fluids publishes papers in all fields of fluid mechanics. Although investigations in well-established areas are within the scope of the journal, recent developments and innovative ideas are particularly welcome. Theoretical, computational and experimental papers are equally welcome. Mathematical methods, be they deterministic or stochastic, analytical or numerical, will be accepted provided they serve to clarify some identifiable problems in fluid mechanics, and provided the significance of results is explained. Similarly, experimental papers must add physical insight in to the understanding of fluid mechanics.
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