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Ocean Wave-Structure Interaction of Two Wave Energy Converters in Malaysian Water

机译:马来西亚水中两个波能转换器的海浪-结构相互作用

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Due to rapid urbanization and industrialization, the consumption of electricity in the world is expected to increase, thus leads to the fast development of the renewable energy industry. In 2016, 24.5% of the electricity is produced by renewable energy. There are several types of renewable energy, e.g. solar, wind, and ocean wave. The ocean wave energy is identified to have the greatest potential for electricity generation. There are various types of wave energy converter (WEC) that have been designed for harnessing the wave energy, e.g. the oscillating water column, salter duck, point absorber, water dagon etc. Due to the smaller dimension, the point absorber is the most suitable WEC to be deployed in an array configuration, whereby each isolated WEC interacts and alters the vicinity of the wave formation by absorbing, radiating, and diffracting the wave. Subsequently, the wave interference will also affect the WEC’s performance. The objective of the present study is to investigate the optimum separation distance, d , that would resulting to an optimum performance between two WECs in an array configuration using a computational fluid dynamics (CFD) software. The analysis considered an isolated WEC and two WECs, i.e. the heaving point absorbers with three point catenary mooring lines. The influence of the separation distance towards diffraction and response amplitude operator (RAO) of an array of two WECs was evaluated. The optimum production of the wave energy by the heaving point absorber is observed to be highly dependant on the relative heave motion of the two WECs [1]. In the present study, it shows that the optimum distance between two WECs in an array configuration is 20 m, whereby the maximum heave RAO were identified.
机译:由于快速的城市化和工业化,预计世界上的电力消耗将增加,从而导致可再生能源产业的快速发展。 2016年,24.5%的电力来自可再生能源。有几种类型的可再生能源,例如太阳,风和海浪。海浪能量被认为具有最大的发电潜力。已设计出各种类型的波能转换器(WEC)以利用波能,例如由于尺寸较小,点吸收器是最适合以阵列形式部署的WEC,因此,每个孤立的WEC相互作用并改变波的形成区域通过吸收,辐射和衍射波。随后,电波干扰也会影响WEC的性能。本研究的目的是使用计算流体动力学(CFD)软件研究最佳分离距离d,该距离将导致阵列配置中的两个WEC之间达到最佳性能。分析考虑了一个孤立的WEC和两个WEC,即具有三点悬链线的垂点吸收器。评估了分离距离对两个WEC阵列的衍射和响应幅度算子(RAO)的影响。观察到由波动点吸收器产生的波能的最佳产生高度依赖于两个WEC的相对波动运动[1]。在本研究中,它表明,阵列配置中两个WEC之间的最佳距离为20 m,从而确定了最大的升沉RAO。

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