论文标题

用柔性压电板收集混合波/电流能量

Hybrid Wave/Current Energy Harvesting with a Flexible Piezoelectric Plate

论文作者

Shoele, Kourosh

论文摘要

我们研究了柔软的压电板的动力学和能量生产能力,这些弹性压电板被浸入靠近自由表面并暴露于入射头部重力波和电流的动力学和能量。得出了一个理论模型,其中标志及其唤醒用涡流线表示,而流体的身体被认为是无关的。该模型被用来描述柔性板,其唤醒,重力入射波和电流之间的流体动力相互作用。该模型揭示了对应于几乎相似的最佳能量生产水平的压电设备的两个不同的振动状态。第一个与板的悬臂扑动模式相关联,对板的柔韧性在不同的Froude数字和传入的波频频率方面有限。另一个类似于流动诱导的拍打模式,在更灵活的板中,能量输出表明对板灵活性的依赖性更高。这两种能量模式的同时存在允许调整板长度,以始终如一地在不同流动条件下达到最大能量生产水平。探索了系统响应的Froude数量的作用,并与表面上的重力波群的外观相关,每个都用不同的波数传播。结果表明,在亚临界和临界流中达到高能状况,需要少于一半的身体长度。最后,最佳电感和电阻值与流动,机械和电时标准之间的适当匹配有关。

We investigate the dynamics and energy production capability of a flexible piezoelectric plate submerged close to the free surface and exposed to incident head gravity waves and current. A theoretical model is derived in which the flag and its wake are represented with a vortex line while the body of the fluid is considered to be inviscid. The model is employed to describe the hydrodynamic interactions between a flexible plate, its wake, gravity incident waves and the current. The model reveals two distinct vibration states of a piezoelectric device corresponding to almost similar optimal energy production levels. The first is associated with the cantilever fluttering mode of the plate with limited dependency on the plate's flexibility across different Froude numbers and incoming wave frequencies. The other resembles the flow-induced flapping mode in more flexible plates, with the energy output showing a higher dependency on plate flexibility. The concurrent existence of these two energetic modes allows adjustment of the plate length to consistently achieve the maximum energy production level across different flow conditions. The role of the Froude number of the system's responses is explored and correlated to the appearance of gravity wave groups on the surface, each propagating with a different wavenumber. It is shown that a submergence depth of less than half of the body length is required to reach a high energetic condition in subcritical and critical flows. Finally, the optimal inductive and resistive values are related to proper matching between flow, mechanical and electrical timescales.

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