Hydro-elastic interaction of polymer materials with regular waves

Krishnendu Puzhukkil, Xinyu Wang, Jingyi Yang, Alistair Borthwick, E. Ransley, John Chaplin, Malcolm Cox, Maozhou Meng, M. Hann, Robert Rawlinson-Smith, Siming Zheng, Shanshan Cheng, Zhong You, Deborah Greaves
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Abstract

The use of flexible materials has the potential to offer a step-change reduction in the cost of wave energy devices by enabling them to absorb more extreme wave loads through their structural responses. Flexible wave energy converters are often manufactured from polymer, fabric, or reinforced polymer components. The elastic modulus, fatigue performance, seawater ageing, and manufacturing process determine the effectiveness of flexible components at replacing their rigid counterparts. During design, it is necessary to assess the hydrodynamic response of the WEC structure to different wave conditions. This work investigates the hydro-elastic response of a submerged polymer membrane, held in a horizontal frame, exposed to regular wave loading. Fast-Fourier Transform analysis enabled assessment of the non-linear response of the membrane exposed to the different wave conditions. The ratio of harmonic to measured wave amplitude ratio gives insight into the excitation mode of the membrane as a function of frequency. It is found that the peak response of the membrane tends to coincide with the fundamental frequency of regular waves. By varying the ratio of membrane length to wavelength an understanding is provided of the hydro-elastic response of the polymer membrane which should be useful in validating software used in the design of flexible WECs.
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规则波高分子材料的水弹性相互作用
柔性材料的使用使波浪能装置能够通过其结构响应吸收更极端的波浪载荷,从而有可能逐步降低波浪能装置的成本。柔性波能转换器通常由聚合物、织物或增强聚合物部件制成。弹性模量、疲劳性能、海水老化和制造工艺决定了柔性部件替代刚性部件的有效性。在设计中,有必要评估WEC结构在不同波浪条件下的水动力响应。这项工作研究了浸没的聚合物膜的水弹性响应,保持在一个水平框架,暴露于规则的波浪荷载。快速傅立叶变换分析能够评估膜暴露在不同波条件下的非线性响应。谐波与被测波幅比的比值使我们深入了解膜的激励模式作为频率的函数。发现膜的峰值响应倾向于与规则波的基频一致。通过改变膜长与波长的比值,可以了解聚合物膜的水弹性响应,这将有助于验证柔性WECs设计中使用的软件。
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