Study on the Special Vortical Structure Development During Flow Separation Control by VGJs in Boundary Layer of Flat Plate with Adverse Pressure Gradient
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Study on the Special Vortical Structure Development During Flow Separation Control by VGJs in Boundary Layer of Flat Plate with Adverse Pressure Gradient
Vol. 46, Issue 1, Pages: 1-8(2012)
作者机构:
西安交通大学能源与动力工程学院,西安,710049
作者简介:
基金信息:
DOI:
CLC:TK262
Online First:10 January 2012,
Published:2012
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Study on the Special Vortical Structure Development During Flow Separation Control by VGJs in Boundary Layer of Flat Plate with Adverse Pressure Gradient[J]. 2012, 46(1): 1-8.
DOI:
Study on the Special Vortical Structure Development During Flow Separation Control by VGJs in Boundary Layer of Flat Plate with Adverse Pressure Gradient[J]. 2012, 46(1): 1-8.DOI:
Study on the Special Vortical Structure Development During Flow Separation Control by VGJs in Boundary Layer of Flat Plate with Adverse Pressure Gradient
Experimental and numerical studies were performed at low Reynolds number using VGJs on flat plates with adverse pressure gradient to investigate the physical mechanism of flow separation control by VGJs in boundary layers. The control effects and the statistical characteristics of different control modes were analyzed to explore the development of the large-scale coherent structure. The instantaneous flow analyses show that the hairpin or hairpin-like vortices are two classical vortical structures formed from vertical and angled VGJs in adverse pressure gradient. In downstream of angled VGJs
the additional flow structures are generated as a consequence of the hairpin-like vortices. Its formation could increase the transport of energy and mass
and then improve the dissipation effectively. In addition
the angled VGJs provides more effective separation control than the vertical VGJs.
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