Flow stabilization with active hydrodynamic cloaks

dc.contributor.author

Urzhumov, Yaroslav A

dc.contributor.author

Smith, David R

dc.date.accessioned

2013-07-11T22:43:02Z

dc.date.issued

2012-11-21

dc.description.abstract

We demonstrate that fluid flow cloaking solutions, based on active hydrodynamic metamaterials, exist for two-dimensional flows past a cylinder in a wide range of Reynolds numbers (Re's), up to approximately 200. Within the framework of the classical Brinkman equation for homogenized porous flow, we demonstrate using two different methods that such cloaked flows can be dynamically stable for Re's in the range of 5-119. The first highly efficient method is based on a linearization of the Brinkman-Navier-Stokes equation and finding the eigenfrequencies of the least stable eigenperturbations; the second method is a direct numerical integration in the time domain. We show that, by suppressing the von Kármán vortex street in the weakly turbulent wake, porous flow cloaks can raise the critical Reynolds number up to about 120 or five times greater than for a bare uncloaked cylinder. © 2012 American Physical Society.

dc.description.sponsorship

This work was supported by the NAVAIR division of the US Navy through a subcontract with SensorMetrix (Contract No. N68335-11-C-0011).

dc.identifier.eissn

1550-2376

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1539-3755

dc.identifier.uri

https://hdl.handle.net/10161/7574

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en_US

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American Physical Society (APS)

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Physical Review E - Statistical, Nonlinear, and Soft Matter Physics

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10.1103/PhysRevE.86.056313

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Physical Review E

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Flow stabilization with active hydrodynamic cloaks

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Journal article

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86

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056313

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5

pubs.organisational-group

Duke

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Electrical and Computer Engineering

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Pratt School of Engineering

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Published

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86

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