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首页> 外文期刊>Journal of Fluid Mechanics >Boundary-element method for the prediction of performance of flapping foils with leading-edge separation
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Boundary-element method for the prediction of performance of flapping foils with leading-edge separation

机译:边界分离法预测箔片性能的边界元方法

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摘要

A numerical model based on a boundary-element method is developed to predict the performance of flapping foils for the general cases where vorticities are shed near the leading edge as well as from the trailing edge. The shed vorticities are modelled as desingularized thin shear layers which propagate with the local flow velocity. Special treatments are developed to model the unsteady and alternating leading-edge separation (LES), which is a main element of difficulty for theoretical and numerical analyses of general flapping foils. The present method is compared with existing experiments where it is shown that the inclusion of LES significantly improves the prediction of thrust and efficiency, obtaining excellent agreement with measurements over a broad range of flapping frequencies (Strouhal number) and motion amplitudes (maximum angle of attack). It is found that the neglect of LES leads to substantial over-prediction of the thrust (and efficiency). The effects of LES on thrust generation in terms of the circulation around the foil, the steady and unsteady thrust components, and the vortex-induced pressure on the foil are elucidated. The efficiency and robustness of the method render it suitable for design optimization which generally requires large numbers of performance evaluations. To illustrate this, we present a sample problem of designing the flapping motion, with the inclusion of higher harmonic components, to maximize the efficiency under specified thrust. When optimal higher harmonic motions are included, the performance of the flapping foil is appreciably improved, mitigating the adverse effects of LES vortex on the performance.
机译:建立了基于边界元方法的数值模型,以预测在涡流在前缘附近和后缘附近脱落的一般情况下拍打箔的性能。脱落的涡度被建模为以局部流速传播的异化薄剪切层。已开发出特殊处理来对不稳定和交替的前沿分离(LES)进行建模,这是常规拍打箔的理论和数值分析困难的主要因素。将本方法与现有实验进行比较,结果表明,包含LES可以显着改善推力和效率的预测,并且在较大的拍动频率(斯托洛哈尔数)和运动幅度(最大迎角)范围内获得与测量的极佳一致性)。发现对LES的忽视导致推力(和效率)的大量过高预测。根据箔周围的环流,稳态和非稳态推力分量以及箔上涡流引起的压力,对LES对推力产生的影响进行了阐明。该方法的效率和鲁棒性使其适用于通常需要大量性能评估的设计优化。为了说明这一点,我们提出了一个设计扑动运动的样本问题,其中包括更高的谐波分量,以在指定推力下最大化效率。当包括最佳的高次谐波运动时,拍打箔片的性能将得到显着改善,从而减轻LES涡旋对性能的不利影响。

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