English

Water entry of spheres into a rotating liquid

Fluid Dynamics 2021-02-10 v1

Abstract

The transient cavity dynamics during water entry of a heavy, non-rotating sphere impacting a rotating pool of liquid is studied experimentally, numerically, and theoretically. We show that the pool rotation advances the transition of the cavity type - from deep seal to surface seal - marked by a reduction in the transitional Froude number. The role of the dimensionless rotational number SωR0/U0\mathcal{S} \equiv \omega R_0/U_0 on the transient cavity dynamics is unveiled, where R0R_0 is the sphere radius, ω\omega the angular speed of the liquid, and U0U_0 the impact velocity. The rotating background liquid has two discernible effects on the cavity evolution. Firstly, an increase in the underwater pressure field due to centripetal effects, and secondly a reduction in the pressure of airflow in the cavity neck near the water surface. The non-dimensional pinch-off time of the deep seal shows a robust 1/2 power-law dependence on the Froude number, but with a reducing prefactor for increasing ω\omega. Our findings reveal that the effects of a rotating background liquid on the water entry can be traced back to the subtle differences in the initial stage splash and the near-surface cavity dynamics.

Keywords

Cite

@article{arxiv.2012.06826,
  title  = {Water entry of spheres into a rotating liquid},
  author = {Lei Yi and Shuai Li and Hechuan Jiang and Detlef Lohse and Chao Sun and Varghese Mathai},
  journal= {arXiv preprint arXiv:2012.06826},
  year   = {2021}
}

Comments

10 pages, 3 figures, Journal of Fluid Mechanics (in press)