The current trends toward the greater functionality of electronic devices are resulting in a steady increase in the amount of heat dissipated from electronic components. Forced channel flow is frequently used to remove heat at the walls of the channel where a PCB with a few high heat dissipating components is located. The overall cooling strategy thus must not only match the overall power dissipation load, but also address the requirements of the "hot" components. In order to cool the thermal load with forced channel flow, excessive flow rates will be required. The objective of this study is to investigate if targeted cooling systems, i.e., an impinging jet in combination with a low velocity channel flow, can improve the thermal performance of the system. The steady-state three-dimensional (3-D) model is developed with the Reynolds-Stress-Model (RSM) as a turbulence model. The geometrical case is a channel with a heated cube in the middle of the base plate and two inlets, one horizontal channel flow, and one vertical impinging jet. The numerical model is validated against experimental data obtained from three well-known cases, two cases with an impinging jet on a flat heated plate, and one case with a heated cube in a single channel flow. The effects of the jet Re and jet to-cross-flow velocity ratio are investigated. The airflow pattern around the cube and the surface temperature of the cube as well as the mean values and local distributions of the heat transfer coefficient are presented.
[1]
Erwin R. Meinders,et al.
Experimental study of the convective heat transfer from in-line and staggered configurations of two wall-mounted cubes
,
2002
.
[2]
Masud Behnia,et al.
Numerical study of turbulent heat transfer in confined and unconfined impinging jets
,
1999
.
[3]
B. W. Webb,et al.
Air jet impingement heat transfer at low nozzle-plate spacings
,
1994
.
[4]
Jungho Lee,et al.
STAGNATION REGION HEAT TRANSFER OF A TURBULENT AXISYMMETRIC JET IMPINGEMENT
,
1999
.
[5]
K. Hanjalić,et al.
Local convective heat transfer from an array of wall-mounted cubes
,
1998
.
[6]
K. Hanjalić,et al.
Application of infrared thermography to the evaluation of local convective heat transfer on arrays of cubical protrusions
,
1997
.
[7]
Kemal Hanjalic,et al.
Vortex structure and heat transfer in turbulent flow over a wall-mounted matrix of cubes
,
1999
.
[8]
Andreas Abdon, Bengt Sundén,et al.
NUMERICAL INVESTIGATION OF IMPINGEMENT HEAT TRANSFER USING LINEAR AND NONLINEAR TWO-EQUATION TURBULENCE MODELS
,
2001
.
[9]
K. Hanjalić,et al.
Turbulent heat transfer from a multi-layered wall-mounted cube matrix: a large eddy simulation
,
2002
.
[10]
E. Meinders.
Experimental study of heat transfer in turbulent flows over wall-mounted cubes.
,
1998
.