TY - JOUR
T1 - Managing 1000 W high-power chips by a High-Capacity and lightweight 3D thermosyphon
T2 - An experimental and theoretical study
AU - Bu, Shichao
AU - Jiang, Zhuye
AU - Li, Jie
AU - Yang, Xiaoping
AU - Sun, Zhen
AU - Zhang, Yonghai
AU - Wei, Jinjia
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2025/3/1
Y1 - 2025/3/1
N2 - The digital economy raised a rapid demand for computing power, leading to an urgent need for thermal management of high-power chips. Although the liquid cooling technology was efficiency, it also had the disadvantages of liquid leakage risk and high cost. In this study, using the environmentally friendly refrigerant R1233zd(E) as working fluid, a lightweight aluminum-based 3D thermosyphon which combined the advantages of air cooling and phase-change was proposed and tested. The micro structures were fabricated on the heat absorption side and heat releasing side of the 3D thermosyphon to enhance its overall performance, which enabled the 3D thermosyphon to manage the heat of high power and high heat flux chips. The results indicated that the liquid filling ratio of the 3D thermosyphon had an optimum value of 42 %. Comparing to plain surface, the micro-pin fins on the heat absorption side enhanced the boiling heat transfer dramatically, leading to a decreasing of thermal resistance of 16.8 %. Besides expanding the boiling chamber volume, the issue of vapor diffusion at high heat fluxes was addressed, which enabled the 3D thermosyphon to achieve a recorded heat flux of 112 W/cm2 and a maximum cooling power of 1000 W. Finally, considering the boiling, condensation, and forced convection heat transfer process, a comprehensive predicting model for the 3D thermosyphon was developed and agreed well experimental results.
AB - The digital economy raised a rapid demand for computing power, leading to an urgent need for thermal management of high-power chips. Although the liquid cooling technology was efficiency, it also had the disadvantages of liquid leakage risk and high cost. In this study, using the environmentally friendly refrigerant R1233zd(E) as working fluid, a lightweight aluminum-based 3D thermosyphon which combined the advantages of air cooling and phase-change was proposed and tested. The micro structures were fabricated on the heat absorption side and heat releasing side of the 3D thermosyphon to enhance its overall performance, which enabled the 3D thermosyphon to manage the heat of high power and high heat flux chips. The results indicated that the liquid filling ratio of the 3D thermosyphon had an optimum value of 42 %. Comparing to plain surface, the micro-pin fins on the heat absorption side enhanced the boiling heat transfer dramatically, leading to a decreasing of thermal resistance of 16.8 %. Besides expanding the boiling chamber volume, the issue of vapor diffusion at high heat fluxes was addressed, which enabled the 3D thermosyphon to achieve a recorded heat flux of 112 W/cm2 and a maximum cooling power of 1000 W. Finally, considering the boiling, condensation, and forced convection heat transfer process, a comprehensive predicting model for the 3D thermosyphon was developed and agreed well experimental results.
KW - 3D thermosyphon
KW - Air Cooling
KW - Data Center Cooling
KW - Model prediction
UR - https://www.scopus.com/pages/publications/85212329406
U2 - 10.1016/j.applthermaleng.2024.125262
DO - 10.1016/j.applthermaleng.2024.125262
M3 - 文章
AN - SCOPUS:85212329406
SN - 1359-4311
VL - 262
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 125262
ER -