物理
空气动力学
声学
转子(电动)
消声室
指向性
声压
涡流
噪音(视频)
翼型
空气声学
降噪
涡流发生器
风洞
刀(考古)
还原(数学)
流量(数学)
流量控制(数据)
直升机旋翼
分离涡模拟
大涡模拟
噪声控制
湍流
散射
机制(生物学)
航空航天工程
流动分离
工作(物理)
宽带
机械
压力测量
机械风扇
计算流体力学
叶片节距
跨音速
作者
Tongzhen Zhang,Zhiyong Cheng,ChangSheng Zhao,Yuqi Wang,Youyi Zhao,Yu Liu
摘要
Aiming at addressing the noise control challenge of small unmanned aerial vehicle (UAV) rotors, this study proposes a bio-inspired blade design with forward–backward swept tip (Bat blade). Its aerodynamic and aeroacoustic performance in hover is systematically investigated using anechoic chamber measurements and large eddy simulations. Results show that the Bat blade maintains aerodynamic efficiency comparable to the baseline blade while achieving significant noise reduction. The overall sound pressure level is reduced by up to 4 dB, with the broadband component attenuated by ∼7 dB across all directivity angles. A combined acoustic and flow-field analysis elucidates the noise reduction mechanism. Flow-field analysis reveals a delta-wing-like control mechanism: the forward–backward swept geometry induces leading-edge vortices that stabilize the flow over the central wave-crest region, inhibiting boundary-layer transition. This flow stabilization effectively suppresses the generation of turbulent structures in the outboard trailing-edge region. Near-field acoustic source analysis confirms a substantial suppression of pressure fluctuations in this region, which fundamentally weakens the mid-to-high-frequency trailing-edge scattering noise. This work provides new insights for the design of low-noise rotors for small UAVs.
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