TY - JOUR
T1 - Thermal analysis and experimental verification on double-layer microchannel heat sinks with impact jet nested arrays
AU - Shen, Han
AU - Zhang, Zhihua
AU - Ge, Xiaobo
AU - Liu, Huanling
AU - Xie, Gongnan
AU - Wang, Chi Chuan
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/8/1
Y1 - 2023/8/1
N2 - The present study investigate a novel combined features which make use of impingement jet nested arrays (IJNAs) to strength the thermal performance of double-layer microchannel heat sinks (DMCHS) based on 3D printing technologies. The IJNAs are firstly introduced into the DMCHS to enhance the thermal characteristics compared with the traditional straight and impact jet straight arrays DMCHS. Three 3D-printed test samples were manufactured for experiments, and it is found that the numerical simulations are in line with the experimental measurements. The thermal control of the substrate temperature by introducing IJNAs is very effective, and the reduction in peak temperature on substrate is more than 20 K lower than that of traditional DMCHS. The experimental study and numerical simulation both show that the heat transfer enhancement of the impingement jet and nested structure is very pronounced. Besides, the average Nusselt number of IJNA-DMCHS is 5.33% higher than that of IJSA-DMCHS. Even though the proposed structure of IJNA yields higher pressure drop penalty, the overall thermal performance factor that balances the influence of heat transfer augmentation and pressure drop penalty still favors the proposed IJNA-DMCHS with nested channels, and it outperforms considerably that of IJSA-DMCHS with straight channels.
AB - The present study investigate a novel combined features which make use of impingement jet nested arrays (IJNAs) to strength the thermal performance of double-layer microchannel heat sinks (DMCHS) based on 3D printing technologies. The IJNAs are firstly introduced into the DMCHS to enhance the thermal characteristics compared with the traditional straight and impact jet straight arrays DMCHS. Three 3D-printed test samples were manufactured for experiments, and it is found that the numerical simulations are in line with the experimental measurements. The thermal control of the substrate temperature by introducing IJNAs is very effective, and the reduction in peak temperature on substrate is more than 20 K lower than that of traditional DMCHS. The experimental study and numerical simulation both show that the heat transfer enhancement of the impingement jet and nested structure is very pronounced. Besides, the average Nusselt number of IJNA-DMCHS is 5.33% higher than that of IJSA-DMCHS. Even though the proposed structure of IJNA yields higher pressure drop penalty, the overall thermal performance factor that balances the influence of heat transfer augmentation and pressure drop penalty still favors the proposed IJNA-DMCHS with nested channels, and it outperforms considerably that of IJSA-DMCHS with straight channels.
KW - Double-layer microchannel heat sinks
KW - Heat transfer enhancement
KW - Impact jet nested arrays
KW - Thermal resistance
UR - http://www.scopus.com/inward/record.url?scp=85151686661&partnerID=8YFLogxK
U2 - 10.1016/j.ijheatmasstransfer.2023.124169
DO - 10.1016/j.ijheatmasstransfer.2023.124169
M3 - 文章
AN - SCOPUS:85151686661
SN - 0017-9310
VL - 209
JO - International Journal of Heat and Mass Transfer
JF - International Journal of Heat and Mass Transfer
M1 - 124169
ER -