TY - JOUR
T1 - Acoustic-driven nanofluids for phase-change thermal management of electronic devices
AU - Hou, Junsheng
AU - Huang, Lei
AU - Li, Dongyu
AU - Zhao, Xiong
AU - Wei, Ning
AU - Ma, Li
AU - Ding, Zihan
AU - Chen, Zhenzhen
AU - Wei, Jinjia
AU - Hao, Nanjing
N1 - Publisher Copyright:
© 2025
PY - 2025/12/15
Y1 - 2025/12/15
N2 - Thermal management in confined spaces presents a critical challenge for electronic device performance. Two-phase cooling demonstrates exceptional heat transfer capabilities in compact environments through latent heat utilization during phase change process. However, vapor film formation occurs prematurely due to bubble adhesion and accumulation in confined spaces. This study develops a low-power acoustic-enabled microchannel cooling system coupled with nanofluids, achieving significant thermal enhancement through combined active-passive strategies. Rapid synthesis of nanofluids is realized by high-throughput microreactor. Acoustic excitation facilitates bubble detachment and migration to delay vapor film formation, while nanofluids substantially increase nucleation site density and enhance shrinkage of dry spots. These effects collectively enhance critical heat flux (CHF), maximize heat transfer coefficient (HTC), and reduce surface temperature. At the flow velocity of 0.1 m·s−1, the integration of 0.01 wt% nanofluid with acoustics results in a 52 % enhancement in CHF and a 74 % improvement in HTC, along with a notable 13.2 K decrease in surface temperature. The combination of bubble tracking and clustering algorithms quantitatively analyzes bubble dynamics and nucleation characteristics, elucidating the fundamental mechanisms behind performance improvement.
AB - Thermal management in confined spaces presents a critical challenge for electronic device performance. Two-phase cooling demonstrates exceptional heat transfer capabilities in compact environments through latent heat utilization during phase change process. However, vapor film formation occurs prematurely due to bubble adhesion and accumulation in confined spaces. This study develops a low-power acoustic-enabled microchannel cooling system coupled with nanofluids, achieving significant thermal enhancement through combined active-passive strategies. Rapid synthesis of nanofluids is realized by high-throughput microreactor. Acoustic excitation facilitates bubble detachment and migration to delay vapor film formation, while nanofluids substantially increase nucleation site density and enhance shrinkage of dry spots. These effects collectively enhance critical heat flux (CHF), maximize heat transfer coefficient (HTC), and reduce surface temperature. At the flow velocity of 0.1 m·s−1, the integration of 0.01 wt% nanofluid with acoustics results in a 52 % enhancement in CHF and a 74 % improvement in HTC, along with a notable 13.2 K decrease in surface temperature. The combination of bubble tracking and clustering algorithms quantitatively analyzes bubble dynamics and nucleation characteristics, elucidating the fundamental mechanisms behind performance improvement.
KW - Acoustics
KW - Active-passive coupling
KW - Heat transfer enhancement
KW - Nanofluids
KW - Nucleation site detection
UR - https://www.scopus.com/pages/publications/105010208663
U2 - 10.1016/j.jcis.2025.138368
DO - 10.1016/j.jcis.2025.138368
M3 - 文章
C2 - 40652832
AN - SCOPUS:105010208663
SN - 0021-9797
VL - 700
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
M1 - 138368
ER -