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Towards silent micro-air vehicles: optimization of a low Reynolds number rotor in hover

机译:朝向沉默的微空气车辆:悬停中的低雷诺数转子的优化

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摘要

The demand in micro-air vehicles is increasing as well as their potential missions. Either for discretion in military operations or noise pollution in civilian use, noise reduction of micro-air vehicles is a goal to achieve. Aeroacoustic research has long been focusing on full scale rotorcrafts. At micro-air vehicle scales however, the hierarchization of the numerous sources of noise is not straightforward, as a consequence of the relatively low Reynolds number that ranges typically from 5000 to 100,000 and low Mach number of approximately 0.1. This knowledge, however, is crucial for aeroacoustic optimization and blade noise reduction in drones. This contribution briefly describes a low-cost, numerical methodology to achieve noise reduction by optimization of micro-air vehicle rotor blade geometry. Acoustic power measurements show a reduction of 8 dB(A). The innovative rotor blade geometry allowing this noise reduction is then analysed in detail, both experimentally and numerically with large eddy simulation using lattice Boltzmann method. Turbulence interaction noise is shown to be a major source of noise in this configuration of low Reynolds number rotor in hover, as a result of small scale turbulence and high frequency unsteady aeroadynamics impinging the blades at the leading edge.
机译:微空气车辆的需求越来越大以及潜在的任务。为了在民用运营或民用的噪音污染方面酌情,微空气汽车的降噪是实现的目标。空气声学研究长期以来一直专注于全级旋翼飞行器。然而,在微空气车辆尺度上,由于通常为5000至100,000和大约0.1的低马赫数,因此众多噪声源的分级并不简单。然而,这种知识对于流动性优化和无人机的叶片降噪是至关重要的。该贡献简要描述了通过优化微空气车转子叶片几何形状来实现降噪的低成本数值方法。声学功率测量显示为8 dB(a)的减少。然后,通过使用格子Boltzmann方法进行实验和数值和数值进行详细分析允许这种降噪的创新转子叶片几何形状。由于小型湍流和撞击前缘叶片的小规模湍流和高频非稳态空气动力学,湍流相互作用噪声被示出为悬停中的低雷诺数转子的这种配置。

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