Convective heat transfer by impingement of circular liquid jets
Abstract
The impingement of circular, liquid jets provides a convenient method of cooling surfaces. Here, jet impingement cooling of uniformly heated surfaces is investigated analytically and experimentally for stable, unsubmerged, uniform velocity laminar jets in the absence of phase change. Analytical and numerical predictions are developed for a laminar radial film flow. Experiments using undisturbed laminar jets were performed to determine local Nusselt numbers from the stagnation point to radii of up to 40 diameters. Turbulent transition in the film flow is observed experimentally at a certain radius. Beyond this transition radius, a separate turbulent analysis is constructed. Integral method results are compared to numberical results, and Prandtl number effects are investigated. The predictions are found to agree well with the measurements for both laminar and turbulent flow. Predictive formulas are recommended for the entire range of radii.
- Publication:
-
ASME Journal of Heat Transfer
- Pub Date:
- August 1991
- Bibcode:
- 1991ATJHT.113..571L
- Keywords:
-
- Convective Heat Transfer;
- Fluid Jets;
- Hot Surfaces;
- Jet Impingement;
- Radial Flow;
- Surface Cooling;
- Analytic Functions;
- Laminar Flow;
- Numerical Integration;
- Stagnation Point;
- Transition Flow;
- Turbulent Jets;
- Fluid Mechanics and Heat Transfer