TY - GEN
T1 - Compact modelling of forced convection in pin/plate-fin heat sinks subjected to impinging jet heating
AU - Feng, Shangsheng
AU - Kim, Tongbeum
AU - Lu, Tianjian
PY - 2010
Y1 - 2010
N2 - Built upon the porous medium approach, a compact model is presented for forced convection in pin and plate fin heat sinks subjected to non-uniform heating. The modified Darcy's law and the two-equation model are adopted separately to describe fluid flow and heat transfer in the porous model. To take account of heat spreading in the plate-fins and its absence in the pinfins, the concept of anisotropic effective thermal conductivity is employed in the energy equation for the solid phase. To validate the model, experiments are conducted for both pin- and plate-fin heat sinks and the measured local temperature distribution on the heat sink substrate is compared with that predicted. Experimental results reveal that, due to additional heat spreading in the plate-fins, the substrate temperature of the plate-fin heat sink has a more uniform distribution than that of the pinfin heat sink. Obtained good agreement between model predictions and experimental measurements suggests that the present model is suitable for predicting the spreading effects in the connected solid phase of porous media (e.g., plate-fins) under non-uniform heating boundary conditions.
AB - Built upon the porous medium approach, a compact model is presented for forced convection in pin and plate fin heat sinks subjected to non-uniform heating. The modified Darcy's law and the two-equation model are adopted separately to describe fluid flow and heat transfer in the porous model. To take account of heat spreading in the plate-fins and its absence in the pinfins, the concept of anisotropic effective thermal conductivity is employed in the energy equation for the solid phase. To validate the model, experiments are conducted for both pin- and plate-fin heat sinks and the measured local temperature distribution on the heat sink substrate is compared with that predicted. Experimental results reveal that, due to additional heat spreading in the plate-fins, the substrate temperature of the plate-fin heat sink has a more uniform distribution than that of the pinfin heat sink. Obtained good agreement between model predictions and experimental measurements suggests that the present model is suitable for predicting the spreading effects in the connected solid phase of porous media (e.g., plate-fins) under non-uniform heating boundary conditions.
UR - https://www.scopus.com/pages/publications/84860542844
U2 - 10.1115/IHTC14-22353
DO - 10.1115/IHTC14-22353
M3 - 会议稿件
AN - SCOPUS:84860542844
SN - 9780791849408
T3 - 2010 14th International Heat Transfer Conference, IHTC 14
SP - 531
EP - 540
BT - 2010 14th International Heat Transfer Conference, IHTC 14
T2 - 2010 14th International Heat Transfer Conference, IHTC 14
Y2 - 8 August 2010 through 13 August 2010
ER -