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The Method of Imbedded Lagrangian Element to Estimate Wave Power Absorption by Some Submerged Devices

The Method of Imbedded Lagrangian Element to Estimate Wave Power Absorption by Some Submerged Devices
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摘要 A simple approach is described to estimate the wave power absorption potential of submerged devices known to cause wave focusing and flow enhancement. In particular, the presence of a flow-through power take-off (PTO) system, such as low-head turbines, can be accounted for. The wave radiation characteristics of an appropriately selected Lagrangian element (LE) in the fluid domain are first determined. In the limit of a vanishing mass, the LE reduces to a patch of distributed normal dipoles. The hydrodynamic coefficients of this virtual object are then input in a standard equation of motion where the effect of the PTO can be represented, for example, as a dashpot damping term. The process is illustrated for a class of devices recently proposed by Carter and Ertekin (2011), although in a simplified form. Favorable wave power absorption is shown for large ratios of the LE wave radiation coefficient over the LE added mass coefficient. Under optimal conditions, the relative flow reduction from the PTO theoretically lies between 0.50 and 1 2 ≈ 0.71, with lower values corresponding to better configurations. Wave power capture widths, the sensitivity of results to PTO damping and sample spectral calculations at a typical site in Hawaiian waters are proposed to further illustrate the versatility of the method.
机构地区 Department of
出处 《Journal of Marine Science and Application》 2014年第2期134-142,共9页 船舶与海洋工程学报(英文版)
基金 Unsponsored(cost share)contribution to the U.S.Department of Energy through the Hawaii National Marine Renewable Energy Center(Hawaii Natural Energy Institute,University of Hawaii),Account No.6658090
关键词 power take-off (PTO) Lagrangian element (LE) 拉格朗日元法 设备 电吸收 功率吸收 波浪 估算 埋藏 质量系数
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参考文献21

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