English

Bouncing behaviour of a particle settling through a density transition layer

Fluid Dynamics 2024-11-20 v2

Abstract

The present work focuses on a specific bouncing behaviour as a particle settling through a three-layer stratified fluid in the absence of neutral buoyant position, which was firstly discovered by Abaid, N., Adalsteinsson D., Agyapong A. & McLaughlin, R.M. (2004) in salinity-induced stratification. Both experiments and numerical simulations are carried out. In our experiments, illuminated by a laser sheet on the central plane of the particle, its bouncing behaviour is well captured. We find that the bouncing process starts after the wake detaches from the particle. The PIV results show that an upward jet is generated at the central axis behind the particle after the wake breaks. By conducting a force decomposition procedure, we quantify the enhanced drag caused by the buoyancy of the wake (FsbF_{sb}) and the flow structure (FsjF_{sj}). It is noted that FsbF_{sb} contributes primarily to the enhanced drag at the early stage, which becomes less dominant after the detachment of the wake. In contrast, FsjF_{sj} plays a pivotal role in reversing the particle's motion. We conjecture that the jet flow is a necessary condition for the occurrence of bouncing motion. Then, we examine the minimal velocities (negative values when bounce occurs) of the particle by varying the lower Reynolds number RelRe_l, the Froude number FrFr and the upper Reynolds number ReuRe_u within the ranges 1Rel1251 \leq Re_l\leq 125, 115Reu356115 \leq Re_u\leq 356 and 2Fr72 \leq Fr\leq 7. We find that the bouncing behaviour is primarily determined by RelRe_l. In our experiments, the bouncing motion is found to occur below a critical lower Reynolds number around Rel=30Re^ \ast _{l}=30. In the numerical simulations, the highest value for this critical number is Rel=46.2Re^ \ast _{l}=46.2, limited in the currently studied parametric ranges.

Keywords

Cite

@article{arxiv.2301.01484,
  title  = {Bouncing behaviour of a particle settling through a density transition layer},
  author = {Shuhong Wang and Prabal Kandel and Jian Deng and C. P. Caulfield and Stuart B. Dalziel},
  journal= {arXiv preprint arXiv:2301.01484},
  year   = {2024}
}
R2 v1 2026-06-28T08:02:09.117Z