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Hydrodynamic Considerations in Near-Optimal Control of a Small Wave Energy Converter for Ocean Measurement Applications

机译:海洋测量应用小波能量转换器的近最佳控制中的流体力学考虑

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This paper investigates the use of wave energy to power long-term ocean sensing systems. The device examined here consists of an oceanographic buoy and a shallow-submerged reaction frame that may carry a science instrument. Power conversion is from the relative heave oscillation between the two bodies. The oscillation is controlled on a wave-by-wave basis using near-optimal feedforward control, which requires up-wave surface elevation measurement and deterministic prediction at the device location. This paper presents the dynamic formulation used to evaluate the near-optimal, wave-by-wave control forces in the time domain. Also examined are reaction-frame geometries for their impact on overall power capture through favorable hydrodynamic interactions. Performance is evaluated in a range of wave conditions (from most to least favorable for conversion) sampled over a year at a chosen site of deployment. It is found that control may be able to provide the required amounts of power to sustain instrument operation at the chosen site but also that energy storage options may be worth pursuing.
机译:本文研究了利用波能为长期海洋传感系统提供动力。此处检查的设备由一个海洋浮标和一个浅水反应架组成,可以携带科学仪器。功率转换来自两个物体之间的相对升沉振荡。使用接近最佳的前馈控制,逐波控制振荡,这需要在设备位置进行向上波表面高程测量和确定性预测。本文提出了一种动态公式,用于评估时域中近乎最佳的逐波控制力。还检查了反应框架的几何形状对它们通过有利的水动力相互作用对总功率捕获的影响。在一年中在选定的部署地点采样的一系列波动条件(从最不利到最不利于转换)中评估性能。可以发现,控制可能能够提供所需的电量,以维持仪器在所选位置的运行,而且能量存储选项可能值得追求。

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