Significant influence of fluid viscoelasticity on flow dynamics past an oscillating cylinder
Faheem Hamid, C. Sasmal

TL;DR
This paper investigates how fluid viscoelasticity affects flow dynamics past an oscillating cylinder, revealing that viscoelastic fluids broaden lock-in regions, alter wake structures, and enable vortex synchronization at lower frequencies.
Contribution
It provides new insights into the influence of viscoelasticity on vortex shedding and lock-in behavior, including the detection of a novel vortex mode and the application of DMD for flow analysis.
Findings
Viscoelasticity broadens the lock-in region in the amplitude-frequency plane.
A new vortex shedding mode (2P) is observed in viscoelastic fluids.
DMD analysis reveals differences in flow structures between Newtonian and viscoelastic fluids.
Abstract
This study presents a numerical investigation of how fluid viscoelasticity influences the flow dynamics past a transversely forced oscillating cylinder in the laminar vortex shedding regime at a fixed Reynolds number of 100. In particular, we examine how fluid viscoelasticity influences the boundary between the lock-in and no lock-in zones and the associated wake topology compared to that seen in a simple Newtonian fluid. All in all, we find that the fluid viscoelasticity facilitates the synchronization of the vortex street with the cylinder motion at lower oscillation frequencies than that required for a Newtonian fluid. Consequently, the boundary of the lock-in region for a viscoelastic fluid differs from the Newtonian one and broadens in the non-dimensional cylinder oscillation amplitude and frequency plane. Furthermore, we propose that excess strain generated due to the stretching…
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Taxonomy
TopicsFluid Dynamics and Vibration Analysis · Vibration and Dynamic Analysis · Fluid Dynamics and Turbulent Flows
