TY - JOUR
T1 - Effects of cavitation number and pitching frequency on hysteresis characteristics of a pitching hydrofoil
AU - Zhang, Mengjie
AU - Xu, Zhongyi
AU - Ruan, Xinjian
AU - Wang, Meijing
AU - Liu, Taotao
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/12/1
Y1 - 2024/12/1
N2 - In this study, the effect of cavitation number σ and pitching frequency f∗ on hysteresis characteristics of a pitching hydrofoil, has been investigated. The angle of attack α changed from 5° to 15°, then from 15° to 5° at each pitching period. A pitching 2D (Two-dimensional) Clark-y hydrofoil is analyzed with high-speed video recording for the cavitation pattern. The hysteresis phenomenon is observed in increasing and decreasing of α, and the hysteresis effects changed with σ and f∗. The cavitating flow around the pitching hydrofoil during different conditions are simulated by revised k-ω SST (Shear Stress Transfer) turbulence model and Merkle cavitation model. The calculation results of hysteresis characteristic parameters showed that the decrease of σ leads to the increase of hysteresis effect. As σ decreased, the evolution of cavity vortex is more complex. Especially in the downstroke, there are complex phenomena such as vortex decomposition and merging, which leads to the intensification of hydrodynamic hysteresis effect. There is a nonlinear relationship between the hysteresis characteristic parameters and f∗. As f∗ increases, its influence on the cavitation flow in the downstroke becomes more and more serious. Besides, the evolution form of cavitation vortices also changes, which leads to the change of hysteresis characteristics.
AB - In this study, the effect of cavitation number σ and pitching frequency f∗ on hysteresis characteristics of a pitching hydrofoil, has been investigated. The angle of attack α changed from 5° to 15°, then from 15° to 5° at each pitching period. A pitching 2D (Two-dimensional) Clark-y hydrofoil is analyzed with high-speed video recording for the cavitation pattern. The hysteresis phenomenon is observed in increasing and decreasing of α, and the hysteresis effects changed with σ and f∗. The cavitating flow around the pitching hydrofoil during different conditions are simulated by revised k-ω SST (Shear Stress Transfer) turbulence model and Merkle cavitation model. The calculation results of hysteresis characteristic parameters showed that the decrease of σ leads to the increase of hysteresis effect. As σ decreased, the evolution of cavity vortex is more complex. Especially in the downstroke, there are complex phenomena such as vortex decomposition and merging, which leads to the intensification of hydrodynamic hysteresis effect. There is a nonlinear relationship between the hysteresis characteristic parameters and f∗. As f∗ increases, its influence on the cavitation flow in the downstroke becomes more and more serious. Besides, the evolution form of cavitation vortices also changes, which leads to the change of hysteresis characteristics.
UR - http://www.scopus.com/inward/record.url?scp=85206922409&partnerID=8YFLogxK
U2 - 10.1016/j.oceaneng.2024.119557
DO - 10.1016/j.oceaneng.2024.119557
M3 - Article
AN - SCOPUS:85206922409
SN - 0029-8018
VL - 313
JO - Ocean Engineering
JF - Ocean Engineering
M1 - 119557
ER -