School of Aeronautical Engineering, Zhengzhou University of Aeronautics, Zhengzhou, China.
School of Mechanical and Power Engineering, Zhengzhou University, Zhengzhou, China.
PLoS One. 2021 Feb 9;16(2):e0245985. doi: 10.1371/journal.pone.0245985. eCollection 2021.
In recent years, the flow characteristics research of the interstage region in counter-rotating axial fans in terms of fluid dynamics has attracted much attention. Especially, the dynamic relationship between interstage pressure pulsation and blade vibration in counter-rotating axial fans has not yet been clarified. This paper performs the signal processing method of wavelet decomposition and reconstruction in time-frequency analysis process. Under different flow conditions, weak-coupling numerical simulation program is employed to analyze the fluid-structure coupling interaction between interstage pressure pulsations and blade vibrations in counter-rotating axial fans. The results indicate that the fluid-structure coupling interaction field in the interstage of counter-rotating axial fans mainly excites the first-order vibration of the second-stage blade. At the same time, the consistency between the pulsation frequency and the vibration frequency of the airflow reflects the good coupling property. Two stage blades cut the airflow to cause field changes and airflow pulsation, and then, airflow pulsation causes blades deformation and produces vibrations of the same frequency at the blade. The deformation of the blades, in turn, causes the flow field changes. Rotating stall, vortex movement and breakdown produced low-frequency airflow pulsation and vortex vibration of the blade.
近年来,流体动力学领域对反向旋转轴流风机级间区域的流动特性进行了大量研究。特别是,反向旋转轴流风机级间压力脉动与叶片振动之间的动态关系尚未阐明。本文在时频分析过程中采用了小波分解和重构的信号处理方法。在不同的流动条件下,采用弱耦合数值模拟程序分析了反向旋转轴流风机级间压力脉动与叶片振动的流固耦合相互作用。结果表明,反向旋转轴流风机级间的流固耦合相互作用场主要激励二级叶片的一阶振动。同时,脉动频率与气流振动频率的一致性反映了良好的耦合特性。两级叶片切割气流引起场变化和气流脉动,然后气流脉动引起叶片变形,叶片产生相同频率的振动。叶片的变形反过来又引起流场的变化。旋转失速、涡旋运动和失速产生低频气流脉动和叶片的涡旋振动。