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Numerical investigation of the dynamic response and power capture performance of a VLFS with a wave energy conversion unit

机译:带有波能转换单元的VLFS的动态响应和功率捕获性能的数值研究

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摘要

This paper numerically investigates the dynamic response and power capture performance of a Very Large Floating Structure (VLFS) with a Wave Energy Conversion (WEC) unit. The VLFS is composed of two hinged modules of which the relative pitch motion induced by waves is converted into electricity by the WEC unit. The discrete-module-beam-bending based hydroelasticity method is used to establish the equations of motion for the VLFS. A theoretical model is derived for optimizing the power take-off damping of the WEC unit. Based on the numerical results, it is found that (i) placing hinge near the foreside of VLFS is a good option for both the reduction of hydroelastic response and the enhancement of power absorption; (ii) for medium and long waves a larger wave incidence angle corresponds to a larger vertical displacement, a smaller bending moment and a decreased power capture width ratio of the VLFS; and (iii) the decrease of structural bending stiffness brings an increase of vertical displacement and a reduction of bending moment while its effect on power absorption is insignificant except for a very large bending stiffness.
机译:本文数值研究了具有波浪能转换(WEC)单元的超大型浮式结构(VLFS)的动态响应和功率捕获性能。 VLFS由两个铰接模块组成,其波动引起的相对俯仰运动通过WEC单元转换为电能。基于离散模块梁弯曲的水弹性方法用于建立VLFS的运动方程。推导了用于优化WEC单元的取力器阻尼的理论模型。根据数值结果,发现(i)将铰链放置在VLFS的前部附近对于减少水弹性响应和增强功率吸收都是不错的选择; (ii)对于中长波,较大的波入射角对应于VLFS的较大垂直位移,较小的弯矩和减小的功率捕获宽度比; (iii)结构抗弯刚度的降低带来了垂直位移的增加和弯曲力矩的减小,而其对功率吸收的影响微乎其微,除了非常大的抗弯刚度。

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