波特性对点吸收波能转换器PTO影响的数值模拟

A. Hamada, Abigail Rolen, W. McCullough, Mirjam Furth
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引用次数: 3

摘要

海洋目前是一个巨大而未开发的可再生能源。最近对蓝色经济的兴趣导致科学界增加了对可持续海洋能源选择的研究,例如点波能量转换器(WEC)。这些装置利用浮标的激振振荡运动来收集波浪能量,浮标与动力起飞系统(PTO)相连。在过去的几十年里,这些设备的发展得到了推动,但它们仍然落后于其他可再生能源技术。德克萨斯A&M大学的Furthlab通过在非线性Stokes-II波浪产生中测试不同的浮标形状和长径比,证明了具有低长径比的球形浮标形状是提取波浪能量的良好候选形状。本文是我们研究的下一步,通过数值研究改变波浪的幅值、频率和速度等特性对球形浮标系统发电能力的影响。在OpenFOAM中对所选浮标进行了三维非定常reynolds - average Navier-Stokes (URANS)模拟,并集成了动态网格模块来处理浮标的升沉运动。此外,采用弹簧和阻尼器的强制振荡机构对PTO系统进行了补偿。通过对浮标位移、频率响应和功率效率的比较,得出了使用椭球WEC实现能量输出最大化的最佳工作海况。结果表明:直径为1 m、长度为0.5 m的球形浮标的最佳波浪条件是:波浪长度大于4 m,波高小于0.15 m,波速在0.07 ~ 0.12 m/s之间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of the effect of wave characteristics on PTO of Point Absorber Wave Energy Converter
The ocean is currently an extremely large and under-developed source of renewable energy. The recent interest in the Blue Economy has led the scientific community to increase investigations in sustainable oceanic energy options, such as PointWave Energy Converters (WEC). These devices harvest the wave energy using the excited oscillatory motion of the buoy, which is connected to a Power Take-Off system (PTO). During the last decades, the development of these devices has been boosted but they are still behind other renewable energy technologies. The Furthlab at Texas A&M University has showed that the spheroid buoy shape with a low length to diameter ratio is a good candidate shape to extract wave energy, by testing different buoy shapes and aspect ratios at a non-linear Stokes-II wave generation. This paper is the next step in our research and numerically investigates the effect of changing the wave characteristics, such as amplitude, frequency, and speed, on the power-generating ability of the spheroid buoy system. Three-dimensional Unsteady Reynolds-Averaged Navier-Stokes (URANS) simulations of the selected buoy were performed in OpenFOAM with the integration of a dynamic mesh module to handle the heave motion of the buoy. In addition, the PTO system was compensated with a forced oscillator mechanism of spring and damper. A comparison between the buoy’s displacement and frequency responses, and power efficiency showed the optimal operating sea state to maximize energy output using the spheroid WEC. The results conclude that the best wave conditions to maximize the power extraction efficiency using a spheroid buoy with a diameter of 1 m and length of 0.5 m are wave length greater than 4 m, wave height less than 0.15 m, and wave speed between 0.07 and 0.12 m/s.
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