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Multiresolution Large-Eddy Simulation of an Array of Hydrokinetic Turbines in a Field-Scale River: The Roosevelt Island Tidal Energy Project in New York City

机译:田间规模河流中一系列水动力涡轮机的多分辨率大涡模拟:纽约罗斯福岛潮汐能项目

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Marine hydrokinetic (MHK) power generation systems enable harvesting energy from waterways without the need for water impoundment. A major research challenge for numerical simulations of field-scale MHK farms stems from the large disparity in scales between the size of waterway and the energy harvesting device. We propose a large-eddy simulation (LES) framework to perform high-fidelity, multiresolution simulations of MHK arrays in a real-life marine environment using a novel unstructured Cartesian flow solver coupled with a sharp-interface immersed boundary method. The potential of the method as a powerful engineering design tool is demonstrated by applying it to simulate a 30 turbine MHK array under development in the East River in New York City. A virtual model of the MHK power plant is reconstructed from high-resolution bathymetry measurements in the East River and the 30 turbines placed in 10 TriFrame arrangements as designed by Verdant Power. A locally refined, near the individual turbines, background unstructured Cartesian grid enables LES across a range of geometric scales of relevance spanning approximately 5 orders of magnitude. The simulated flow field is compared with a baseline LES of the flow in the East River without turbines. While velocity deficits and increased levels of turbulence kinetic energy are observed in the vicinity of the turbine wakes, away from the turbines as well as on the water surface only a small increase in mean momentum is found. Therefore, our results point to the conclusion that MHK energy harvesting from large rivers is possible without a significant disruption of the river flow.
机译:海上水动力(MHK)发电系统无需从水蓄水就可以从水道中收集能量。田间规模的MHK农场数值模拟的主要研究挑战来自于水道规模与能量收集装置之间规模的巨大差异。我们提出了一个大涡模拟(LES)框架,使用新颖的非结构化笛卡尔流解算器和锋利的界面浸入边界方法,在真实的海洋环境中执行MHK阵列的高保真,多分辨率模拟。通过将该方法用于模拟在纽约市东河开发的30台涡轮MHK阵列,证明了该方法作为强大工程设计工具的潜力。 MHK电厂的虚拟模型是根据East River的高分辨率测深测量和Verdant Power设计的10台TriFrame布置中的30台涡轮机重建的。局部精炼的,靠近各个涡轮机的背景非结构化笛卡尔网格使LES可以跨越一系列相关的几何尺度,范围大约为5个数量级。将模拟的流场与没有涡轮机的东河水流的基线LES进行比较。尽管在涡轮机尾流附近观察到速度不足和湍流动能水平增加,但远离涡轮机以及在水面上,仅发现平均动量有小幅增加。因此,我们的结果指出了这样的结论,即可以在不显着中断河流流量的情况下从大型河流收集MHK能量。

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