Evolution of material surfaces in the temporal transition in channel flow
Yaomin Zhao, Yue Yang, Shiyi Chen

TL;DR
This study investigates the evolution of material surfaces in transitional channel flow using a Lagrangian approach, revealing key stages and structures in vortex evolution during flow transition.
Contribution
It introduces a method to track material surfaces as vortex surrogates, providing new insights into vortex dynamics in transitional flows from a Lagrangian perspective.
Findings
Identification of influential material surfaces with maximum deformation.
Observation of vortex line curvature growth and vorticity variations.
Characterization of transition stages through material surface evolution.
Abstract
We report a Lagrangian study on the evolution of material surfaces in the K-type temporal transitional channel flow. Based on the Eulerian velocity field from the DNS, a backward-particle-tracking method is applied to solve the transport equation of the Lagrangian scalar field, and then the iso-surfaces of the Lagrangian field can be extracted as material surfaces in the evolution. Three critical issues for Lagrangian investigations on the evolution of coherent structures using material surfaces are addressed. First, the initial scalar field is uniquely determined based on proposed criteria, so that the initial material surfaces can be approximated as vortex surfaces, and keep invariant in the initial laminar state. Second, the evolution of typical material surfaces initially from different wall distances is presented, and then the influential material surface with the maximum…
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