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Marine Turbine Hydrodynamics by a Boundary Element Method with Viscous Flow Correction

机译:边界流方法与粘滞流修正的海轮机流体力学

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A computational methodology for the hydrodynamic analysis of horizontal axis marine current turbines is presented. The approach is based on a boundary integral equation method for inviscid flows originally developed for marine propellers and adapted here to describe the flow features that characterize hydrokinetic turbines. For this purpose, semi-analytical trailing wake and viscous flow correction models are introduced. A validation study is performed by comparing hydrodynamic performance predictions with two experimental test cases and with results from other numerical models in the literature. The capability of the proposed methodology to correctly describe turbine thrust and power over a wide range of operating conditions is discussed. Viscosity effects associated to blade flow separation and stall are taken into account and predicted thrust and power are comparable with results of blade element methods that are largely used in the design of marine current turbines. The accuracy of numerical predictions tends to reduce in cases where turbine blades operate in off-design conditions.
机译:提出了一种用于水平轴船用水轮机水动力分析的计算方法。该方法基于边界积分方程方法,该方法最初是为船用螺旋桨开发的无粘性流的方法,此处适用于描述表征水动力涡轮机的流特征。为此,引入了半分析的尾流和粘性流校正模型。通过将水动力性能预测与两个实验测试案例以及文献中其他数值模型的结果进行比较来进行验证研究。讨论了所提出的方法在大范围的运行条件下正确描述涡轮推力和功率的能力。考虑到与叶片流分离和失速相关的粘度效应,并且预测的推力和功率与在航海涡轮机设计中大量使用的叶片元件方法的结果相当。在涡轮叶片在非设计条件下运行的情况下,数值预测的准确性往往会降低。

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