Bulletin of the American Physical Society
71st Annual Meeting of the APS Division of Fluid Dynamics
Volume 63, Number 13
Sunday–Tuesday, November 18–20, 2018; Atlanta, Georgia
Session M14: Aerodynamics: General
8:00 AM–9:57 AM,
Tuesday, November 20, 2018
Georgia World Congress Center
Room: B301
Chair: Vibhav Durgesh, California State University, Northridge
Abstract ID: BAPS.2018.DFD.M14.2
Abstract: M14.00002 : The underlying mechanism behind the bursting and reformation cycle of the laminar separation bubble over a NACA-0012 at the inception of stall*
8:13 AM–8:26 AM
Presenter:
Julio Soria
(Monash Univ, King Abdulaziz University)
Authors:
Eltayeb M. ElJack
(University of Khartoum)
Julio Soria
(Monash Univ, King Abdulaziz University)
The mechanism behind the bursting and reformation cycle of the laminar separation bubble (LSB) over a NACA-0012 at Rec = 5 x 104, Ma∞ = 0.4, and various angles of attack at the inception of stall is investigated numerically using Large Eddy Simulation (LES). It is shown that a triad of three vortices is behind the quasi-periodic self-sustained bursting and reformation of the LSB and its associated low-frequency flow oscillation (LFO). A global oscillation in the flow-field around the aerofoil is observed in all of the investigated angles of attack. The flow switches between an attached-phase against an adverse pressure gradient (APG) and a separated-phase despite a favourable pressure gradient (FPG) in a periodic manner with some disturbed cycles. When the direction of the oscillating-flow is clockwise, it adds momentum to the boundary layer and helps it to remain attached against the APG and vice versa. The dynamics of the flow and how the triad of vortices drives and sustains the global oscillation in the flow-field are discusseda.
aarXiv:1807.09199
*All computations were performed on the Aziz Supercomputer at King Abdulaziz university’s High Performance Computing Center (http://hpc.kau.edu.sa), which is gratefully acknowledged.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DFD.M14.2
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