Yang Zhongpo, Wang Xincheng, Zhao Xiaotao, Cheng Huaiyu, Ji Bin
State Key Laboratory of Water Resources Engineering and Management, Wuhan University, Wuhan 430072, People's Republic of China.
State Key Laboratory of Water Resources Engineering and Management, Wuhan University, Wuhan 430072, People's Republic of China.
Ultrason Sonochem. 2024 Feb;103:106780. doi: 10.1016/j.ultsonch.2024.106780. Epub 2024 Jan 22.
This paper investigates the noise reduction performance of biomimetic hydrofoils with wavy leading edge and the corresponding mechanisms. We employ Large Eddy Simulation (LES) approach and permeable Ffowcs Williams-Hawkings (PFW-H) method to predict cavitation noise around the baseline and biomimetic hydrofoils. The results show that the wavy leading edge can effectively reduce the high-frequency noise, but has little effect on the low-frequency noise. Further analyses and discussions deal with the noise reduction mechanisms. The main source for the low-frequency noise is the cavity volume acceleration, while the wavy leading edge has little effect on it. The high-frequency noise sources, related to the surface pressure fluctuations and the turbulence characteristics, are significantly suppressed by the wavy leading edge, thus decreasing the high-frequency noise intensity. Our investigation indicates that the wavy leading edge has great prospects for cavitation noise reduction technique.
本文研究了具有波浪形前缘的仿生水翼的降噪性能及其相应机理。我们采用大涡模拟(LES)方法和可渗透的Ffowcs Williams-Hawkings(PFW-H)方法来预测基线水翼和仿生水翼周围的空化噪声。结果表明,波浪形前缘能有效降低高频噪声,但对低频噪声影响较小。进一步的分析和讨论涉及降噪机理。低频噪声的主要来源是空腔体积加速度,而波浪形前缘对其影响较小。与表面压力波动和湍流特性相关的高频噪声源被波浪形前缘显著抑制,从而降低了高频噪声强度。我们的研究表明,波浪形前缘在空化噪声降低技术方面具有广阔的前景。