Jet array impingement flow distributions and heat transfer characteristics. Effects of initial crossflow and nonuniform array geometry
Abstract
Two-dimensional arrays of circular air jets impinging on a heat transfer surface parallel to the jet orifice plate are considered. The jet flow, after impingement, is constrained to exit in a single direction along the channel formed by the jet orifice plate and the heat transfer surface. The configurations considered are intended to model those of interest in current and contemplated gas turbine airfoil midchord cooling applications. The effects of an initial crossflow which approaches the array through an upstream extension of the channel are considered. Flow distributions as well as heat transfer coefficients and adiabatic wall temperatures resolved to one streamwise hole spacing were measured as a function of the initial crossflow rate and temperature relative to the jet flow rate and temperature. Both Nusselt number profiles and dimensionless adiabatic wall temperature (effectiveness) profiles are presented and discussed. Special test results which show a significant reduction of jet orifice discharge coefficients owing to the effect of a confined crossflow are also presented, along with a flow distribution model which incorporates those effects. A nonuniform array flow distribution model is developed and validated.
- Publication:
-
Arizona State University Technical Report
- Pub Date:
- November 1982
- Bibcode:
- 1982asu..rept.....F
- Keywords:
-
- Arrays;
- Cross Flow;
- Flow Distribution;
- Heat Transfer;
- Jet Flow;
- Jet Impingement;
- Air Jets;
- Cooling Systems;
- Gas Turbine Engines;
- Heat Transfer Coefficients;
- Turbine Blades;
- Wall Temperature;
- Fluid Mechanics and Heat Transfer