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The kinematic genesis of vortex formation due to finite rotation of a plate in still fluid

David, Jimreeves M and Mathur, Manikandan and Govardhan, RN and Arakeri, JH (2018) The kinematic genesis of vortex formation due to finite rotation of a plate in still fluid. In: JOURNAL OF FLUID MECHANICS, 839 . pp. 489-524.

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Official URL: http://dx.doi.org/10.1017/jfm.2017.908


We present a combined experimental and numerical study of an idealized model of the propulsive stroke of the turning manoeuvre in fish. Specifically, we use the framework of Lagrangian coherent structures (LCSs) to describe the kinematics of the flow that results from a thin plate performing a large angle rotation about its tip in still fluid. Temporally and spatially well-resolved velocity fields are obtained using a two-dimensional, incompressible finite-volume solver, and are validated by comparisons with experimentally measured velocity fields and alternate numerical simulations. We then implement the recently proposed variational theory of LCSs to extract the hyperbolic and elliptic LCSs in the numerically generated velocity fields. Detailed LCS analysis is performed for a plate motion profile described by <(theta)over dot>(t) = Omega(max) sin(2)(omega t) during 0 <= t <= t(o) and zero otherwise. The stopping time t(o) is given by t(o) = pi/omega = 10 s, the value of Omega(max) chosen to give a stopping angle of theta(max) = 90 degrees, resulting in a Reynolds number Re = c(2) Omega(max)/nu = 785.4, where c is the plate chord length and nu = 10(-6) m(2) s(-1) the kinematic viscosity of water. The flow comprises a starting and a stopping vortex, resulting in a pair of oppositely signed vortices of unequal strengths that move away from the plate in a direction closely aligned with the final plate orientation at t/t(o) approximate to 2. The hyperbolic LCSs are shown to encompass the fluid material that is advected away from the plate for t > t(o), henceforth referred to as the advected bulk. The starting and stopping vortices, identified using elliptic LCSs and hence more objective than Eulerian vortex detection methods, constitute only around two thirds of the advected bulk area. The advected bulk is traced back to t = 0 to identify five distinct lobes of fluid that eventually form the advected bulk, and hence map the long-term fate of various regions in the fluid at t = 0. The five different lobes of fluid are then shown to be delineated by repelling LCS boundaries at t = 0. The linear momentum of the advected bulk region is shown to account for approximately half of the total impulse experienced by the plate in the direction of its final orientation, thus establishing its dynamical significance. We provide direct experimental evidence for the kinematic relevance of hyperbolic and elliptic LCSs using novel dye visualization experiments, and also show that attracting hyperbolic LCSs provide objective characterization of the spiral structures often observed in vortical flows. We conclude by showing that qualitatively similar LCSs persist for several other plate motion profiles and stopping angles as well.

Item Type: Journal Article
Additional Information: Copy right for this article belong to the CAMBRIDGE UNIV PRESS, 32 AVENUE OF THE AMERICAS, NEW YORK, NY 10013-2473 USA
Department/Centre: Division of Mechanical Sciences > Aerospace Engineering(Formerly Aeronautical Engineering)
Division of Mechanical Sciences > Mechanical Engineering
Date Deposited: 02 Mar 2018 15:04
Last Modified: 21 Feb 2019 10:06
URI: http://eprints.iisc.ac.in/id/eprint/58936

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