Affiliation:
1. Turbine Heat Transfer Laboratory, Department of Mechanical Engineering, Texas A&M University, College Station, TX 77843-3123
Abstract
This paper presents detailed film effectiveness distributions over a flat surface with one row of injection holes inclined streamwise at 35 deg for three blowing ratios (M = 0.5, 1.0, 2.0). Three compound angles of 0, 45, and 90 deg with air (D.R. = 0.98) and CO2 (D. R. = 1.46) as coolants are tested at an elevated free-stream turbulence condition (Tu ≈ 8.5 percent). A transient liquid crystal technique is used to measure local heat transfer coefficients and film effectiveness. Detailed film effectiveness results are presented near and around film injection holes. Compound angle injection provides higher film effectiveness than simple angle injection for both coolants. Higher density injectant produces higher effectiveness for simple injection. However, lower density coolant produces higher effectiveness for a large compound angle of 90 deg. The detailed film effectiveness obtained using the transient liquid crystal technique, particularly in the near-hole region, provided a better understanding of the film cooling process in gas turbine components.
Reference21 articles.
1. Bons
J. P.
, MacArthurC. D., and RivirR. B., 1996, “The Effect of High Free-Stream Turbulence on Film Cooling Effectiveness,” ASME JOURNAL OF TURBOMACHINERY, Vol. 118, pp. 814–825.
2. Ekkad, S. V., and Han, J. C., 1995, “Flat Plate Film Cooling and Heat Transfer Using a Transient Liquid Crystal Technique,” presented at the 4th ASME/JSME Thermal Engineering Joint Conference, Maui, HI, Mar.
3. Ekkad
S. V.
, ZapataD., and HanJ. C., 1997, “Heat Transfer Coefficients Over a Flat Surface With Air and CO2 Injection Through Compound Angle Holes Using a Transient Liquid Crystal Image Method,” ASME JOURNAL OF TURBOMACHINERY, Vol. 119, this issue, pp. 580–586.
4. Foster
N. W.
, and LampardD., 1980, “The Flow and Film Cooling Effectiveness Following Injection Through a Row of Holes,” ASME Journal of Engineering for Power, Vol. 102, pp. 584–588.
5. Goldstein
R. J.
, and YoshidaT., 1982, “The Influence of Laminar Boundary Layer and Laminar Injection on Film Cooling Performance,” ASME Journal of Heat Transfer, Vol. 104, pp. 355–362.
Cited by
110 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献