The dynamics of cylinder-wake/boundary-layer interaction revealed by turbulent transports

Author:

Li Jiang-Hua12,Wang Bo-Fu1ORCID,Qiu Xiang2ORCID,Wu Jian-Zhao1ORCID,Zhou Quan1ORCID,Fu Shi-Xiao34ORCID,Liu Yu-Lu12

Affiliation:

1. Shanghai Key Laboratory of Mechanics in Energy Engineering, Shanghai Institute of Applied Mathematics and Mechanics, School of Mechanics and Engineering Science, Shanghai University, Shanghai 200072, China

2. School of Science, Shanghai Institute of Technology, Shanghai 201418, China

3. State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University, Shanghai 200030, China

4. Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration, Shanghai 201602, China

Abstract

The flow past a cylinder near a plane wall for small gap ratios ([Formula: see text], and 0.9) and fixed ReD = 1000 is numerically studied. The fundamental flow features are characterized by the instantaneous and mean fields. Then, the dynamics of cylinder-wake/boundary-layer interaction are revealed by the turbulent momentum transport and kinetic energy production. The turbulent fluctuations caused by the secondary vortex ( SV) (at [Formula: see text], 0.9) and the novel tertiary vortex ( TV) (at [Formula: see text]) can be observed in the distributions of Reynolds stresses. For [Formula: see text] and [Formula: see text], the wake/boundary-layer interaction is dominated by ejection and sweep events, which are related to the generation of the hairpin vortex. These two bursting events lead to the momentum transport between the high- and low-speed sides. For [Formula: see text], the ejection event is not found in the interaction region because the head of the hairpin vortex is entrained into the wake. The upper roller ( RU) helps to transport high-momentum fluid toward the wall in this case, although it does not take part in the interaction directly. The shedding of RU, the lower roller ( RL), SV (at [Formula: see text] and 0.9), and KH (Kelvin–Helmholtz) vortex (at [Formula: see text]) and the generation of the hairpin vortex are crucial to turbulent kinetic energy (TKE) production. The RU, KH vortex, and SV transfer [Formula: see text] out to [Formula: see text] and [Formula: see text] resulting redistribution of the TKE. While RL, surviving for a shorter time, transfers [Formula: see text] out to [Formula: see text] and [Formula: see text], helping explain why it disappears quickly, TV only transfers out [Formula: see text] out to [Formula: see text], and its TKE comes from other terms rather than the production term. The redistribution of TKE due to the generation of the hairpin vortex can result in the slower growth rate of the secondary disturbance growth stage, promoting the wall boundary layer transition.

Funder

National Natural Science Foundation of China

Science and Technology Innovation Plan Of Shanghai Science and Technology Commission

China Postdoctoral Science Foundation

Shanghai Pujiang Program

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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