Measurements of Heat Transfer Coefficient and Film Cooling Effectiveness Distribution on a Vane Using Transient Liquid Crystal Technique
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Measurements of Heat Transfer Coefficient and Film Cooling Effectiveness Distribution on a Vane Using Transient Liquid Crystal Technique
Vol. 44, Issue 11, Pages: 92-97(2010)
作者机构:
西北工业大学动力与能源学院,西安,710072
作者简介:
基金信息:
DOI:
CLC:V231.1
Online First:10 November 2010,
Published:2010
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Measurements of Heat Transfer Coefficient and Film Cooling Effectiveness Distribution on a Vane Using Transient Liquid Crystal Technique[J]. 2010, 44(11): 92-97.
DOI:
Measurements of Heat Transfer Coefficient and Film Cooling Effectiveness Distribution on a Vane Using Transient Liquid Crystal Technique[J]. 2010, 44(11): 92-97.DOI:
Measurements of Heat Transfer Coefficient and Film Cooling Effectiveness Distribution on a Vane Using Transient Liquid Crystal Technique
The Heat transfer coefficient and the film cooling effectiveness were measured on a turbine NGV airfoil employing the transient liquid crystal technique. There are five rows of compound angle cylinder film holes on the showerhead
10 rows of cylinder holes on the pressure side
two rows of cylinder holes and two rows of fan-shaped holes on the suction side. All the film cooling gas are supplied by two plenums. The measurements were conducted for a three-vane linear cascade at an inlet Reynolds number of 1.1×10
5
a mass flow ratio of 5.87% in the first plenum and 1.06% in the second plenum. Detailed distributions of the heat transfer coefficient and the film cooling effectiveness were obtained. The result shows that the heat transfer coefficient and the film cooling effectiveness are higher in the near hole region
and the fan-
shaped hole displays higher film cooling effectiveness than the cylinder hole. The film cover region shrinks on the suction side and expands on the pressure side by the influence of passage vortex. In addition
the heat transfer distribution on the suction side is influenced by the flow separation and the passage vortex.
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references
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