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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Detailed CFD Analysis of the Steady Flow in a Wells Turbine Under Incipient and Deep Stall Conditions
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Detailed CFD Analysis of the Steady Flow in a Wells Turbine Under Incipient and Deep Stall Conditions

机译:初始和深失速条件下井水轮机稳态流动的详细CFD分析

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This paper presents the results of the numerical simulations carried out to evaluate the performance of a high solidity Wells turbine designed for an oscillating water column wave energy conversion device. The Wells turbine has several favorable features (e.g., simplicity and high rotational speed) but is characterized by a relatively narrow operating range with high efficiency. The aim of this work is to investigate the flow-field through the turbine blades in order to offer a description of the complex flow mechanism that originates separation and, consequently, low efficiency at high flow-rates. Simulations have been performed by solving the Reynolds-averaged Navier-Stokes equations together with three turbulence models, namely, the Spalart-Allmaras, k-omega, and Reynolds-stress models. The capability of the three models to provide an accurate prediction of the complex flow through the Wells turbine has been assessed in two ways: the comparison of the computed results with the available experimental data and the analysis of the flow by means of the anisotropy invariant maps. Then, a detailed description of the flow at different flow-rates is provided, focusing on the interaction of the tip-leakage flow with the main stream and enlightening its role on the turbine performance.
机译:本文介绍了进行数值模拟的结果,以评估设计用于振荡水柱波能量转换装置的高强度韦尔斯涡轮机的性能。韦尔斯涡轮机具有几个有利的特征(例如,简单性和高旋转速度),但是其特征在于相对窄的工作范围和高效率。这项工作的目的是研究通过涡轮叶片的流场,以便对引起分离并因此导致大流量低效率的复杂流动机理进行描述。通过求解雷诺平均的Navier-Stokes方程以及三个湍流模型,即Spalart-Allmaras,k-omega和雷诺应力模型,进行了仿真。已通过两种方式评估了这三种模型提供的通过Wells涡轮机的复杂流量的准确预测的能力:将计算结果与可用的实验数据进行比较,以及通过各向异性不变图进行流量分析。然后,对不同流速下的流量进行了详细描述,着重于尖端泄漏流与主流的相互作用,并阐明了其对涡轮性能的作用。

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