Yang Qi, Li Deyou, Xiao Tinglan, Chang Hong, Fu Xiaolong, Wang Hongjie
School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, China.
Ultrason Sonochem. 2024 Jan;102:106745. doi: 10.1016/j.ultsonch.2023.106745. Epub 2023 Dec 27.
Cavitation limits the efficient and stable operation of rotating machinery. The exploration of control methods for hydrofoil cavitation is important for improving the performance of hydraulic machinery. The leading-edge protuberances of the humpback flipper and the spine structure of the tail fin of sailfish are two common bionic structures for cavitation control; however, the control effects of both have limitations. Accordingly, in this study, a passive control method for hydrofoil cavitation was developed by combining the two bionic structures. With the large eddy simulation method, the cavitation processes of wavy leading-edge hydrofoil, bionic fin spine structure hydrofoil, and novel bionic combined structure hydrofoil were studied under a cavitation number of σ = 0.8. The control mechanisms of the three bionic structures for the hydrofoil cavitation were investigated. The results indicated that the novel bionic combined hydrofoil realised the superposition and complementation of the control effects of the two single bionic structures and achieved a better cavitation inhibition effect, reducing the total volume of cavitation by 43 %. In addition, it enhanced the stability of the flow field and reduced the standard deviation of the pressure coefficient on the suction surface by up to 46.55 %. This research provides theoretical support for the optimisation and modification of the blades of hydraulic machinery, such as propellers and pump turbines.
空化现象限制了旋转机械的高效稳定运行。探索水翼空化的控制方法对于提高水力机械的性能具有重要意义。座头鲸鳍状肢的前缘隆起和旗鱼尾鳍的脊柱结构是两种常见的用于空化控制的仿生结构;然而,两者的控制效果都存在局限性。因此,在本研究中,通过将这两种仿生结构相结合,开发了一种水翼空化的被动控制方法。采用大涡模拟方法,研究了波形前缘水翼、仿生鳍脊柱结构水翼和新型仿生组合结构水翼在空化数σ = 0.8 时的空化过程。研究了三种仿生结构对水翼空化的控制机理。结果表明,新型仿生组合水翼实现了两种单一仿生结构控制效果的叠加和互补,取得了较好的空化抑制效果,使空化总体积减少了43%。此外,它增强了流场的稳定性,使吸力面上压力系数的标准差降低了高达46.55%。本研究为螺旋桨和水泵水轮机等水力机械叶片的优化和改进提供了理论支持。