张靖周
Professor
Education Level:南京航空学院
Degree:Doctoral Degree in Engineering
School/Department:College of Energy and Power Engineering
Discipline:Aerospace Propulsion Theory and Engineering. Engineering Thermophysics
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Affiliation of Author(s):能源与动力学院
Journal:INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER
Key Words:Jet impingement Convective heat transfer Concave surface Chevron jet Conjugated heat transfer
Abstract:Numerical investigations are performed to study the conjugated convective heat transfer on the leading edge of a conical wall subjected to external cold flow and internal hot jet impingement by a single chevron nozzle. The effects of the chevron length (l/d = 0.1, 0.2, 0.3) and chevron penetration depth (p/d = 0.1, 0.15, 0.2) on the hot-jet impingement heat transfer performance are analyzed for a 6-chevrons nozzle. In the current study, non-dimensional jet-to-leading edge distance (H/d) is varied from 2 to 4 and the jet Reynolds number (Re-j) is varied from 7800 to 39,400. In relative to the conventional nozzle, the presence of chevrons increases the jet core velocity and produces more intensive jet fluctuation, thereby improves the heat transfer in the vicinity of the conical surface leading edge, particularly under a small jet Reynolds number or a smaller jet-to-leading edge distance. In general, the local circumferentially-averaged heating effectiveness is improved with the increase of chevron penetration depth ratio for a fixed chevron length ratio or decrease of chevron length ratio for a fixed chevron penetration depth ratio. Due to a large curvature of conical surface, the circumferentially-averaged heating effectiveness under H/d = 4 is greater than that under H/d = 2 at the same chordwise location once s/d is beyond 6. (C) 2016 Published by Elsevier Ltd.
ISSN No.:0017-9310
Translation or Not:no
Date of Publication:2017-03-01
Co-author:Guan, Tao,Shan Yong
Correspondence Author:zjz