Transverse flow-induced vibrations of a sphere in the proximity of a free surface: A numerical study
arXiv:2005.13023 · doi:10.1016/j.jfluidstructs.2021.103224
Abstract
We present a numerical study on the transverse flow-induced vibration (FIV) of an elastically mounted sphere in the vicinity of a free surface at subcritical Reynolds numbers. To begin, We verify and analyze the mode transitions and the motion trajectories of a fully submerged sphere vibrating freely in all directions for the Reynolds number up to . Next, the response dynamics of a transversely vibrating sphere is studied for three values of normalized immersion ratio (, where is the distance from the top of the sphere to undisturbed free-surface level and is the sphere diameter), at (fully submerged sphere with no free-surface effect), (where the top of the sphere touches the free surface) and (where the sphere pierces the free surface). At the lock-in range, we observe that the amplitude response at is decreased significantly compared to the case at . It is found that the vorticity flux is diffused due to the free-surface boundary and the free surface acts as a sink of energy that leads to a reduction in the transverse force and amplitude response. When the sphere pierces the free surface at , the amplitude response at the lock-in state is found to be greater than all the submerged cases studied with the maximum peak-to-peak amplitude of . We find that the interaction of the piercing sphere with the air-water interface causes a relatively large surface deformation and has a significant impact on the synchronization of the vortex shedding and the vibration frequency. Increased streamwise vorticity gives rise to a relatively larger transverse force to the piercing sphere at , resulting in greater positive energy transfer per cycle to sustain the large-amplitude vibration. Lasty, we study the sensitivity of FIV response on the mass ratio, , and Froude number, , at the lock-in state.
45 pages, 32 figures