English

Shear-layer dynamics at the interface of parallel Couette flows

Fluid Dynamics 2022-11-01 v1

Abstract

This article aims to make a detailed analysis of co-flowing plane Couette flows. Particularly, the variation of flow quantities from the turbulent to non-turbulent region is studied. While the enstrophy exhibits a sharp jump, the other quantities (e.g., mean velocity, Reynolds normal stress, and kinetic energy) show a continuous variation across the interface. The budget analysis of Reynolds normal stresses reveals that the terms playing a key role in turbulence transportation vary depending on the Reynolds normal stress under study. The terms production, diffusion, and redistribution play an important role in streamwise Reynolds stress {\dh}u0u0 {\TH}. In the spanwise Reynolds stress {\dh}v0v0 {\TH}, the diffusion terms play a significant role. In the wall-normal Reynolds stress {\dh}w0w0 {\TH}, only the redistribution term is significant. The influence of one flow over another in the co-flow state was observed through the additional mean velocity and Reynolds normal stress found in the system compared to a standard plane Couette flow (pCf). Comparing the co-flow system with a conventional pCf system, the former exhibits greater vorticity, vortex stretching, and kinetic energy. A detailed analysis on the geometry and topology of flow structures was studied using flow invariants.

Keywords

Cite

@article{arxiv.2210.17195,
  title  = {Shear-layer dynamics at the interface of parallel Couette flows},
  author = {Manohar Teja Kalluri and Vagesh D. Narasimhamurthy},
  journal= {arXiv preprint arXiv:2210.17195},
  year   = {2022}
}

Comments

17 PAGES, 21 FIGURES

R2 v1 2026-06-28T04:50:06.615Z