Analysis and control of vapor bubble growth inside solid-state nanopores
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Published version
Author(s)
Type
Journal Article
Abstract
The increasing demands of computational power have accelerated the development of 3D circuits in the semiconductor industry. To resolve the accompanying thermal issues, two-phase microchannel heat exchangers using have emerged as one of the promising solutions for cooling purposes. However, the direct boiling in microchannels and rapid bubble growth give rise to highly unstable heat flux on the channel walls. In this regard, it is hence desired to control the supply of vapor bubbles for the elimination of the instability. In this research, we investigate a controllable bubble generation technique, which is capable of periodically producing bubble seeds at the sub-micron scale. These nanobubbles were generated in a solid-state nanopore filled with a highly concentrated electrolyte solution. As an external electric field was applied, the localized Joule heating inside the nanopore initiated the homogeneous bubble nucleation. The bubble dynamics was analyzed by measuring the ionic current variation through the nanopore during the bubble nucleation and growth. Meanwhile, we theoretically examined the bubble growth and collapse inside the nanopore by a moving boundary model. In both approaches, we demonstrated that by altering the pore size, the available sensible heat for the bubble growth can be manipulated, thereby offering the controllability of the bubble size. This unique characteristic renders nanopores suitable as a nanobubble emitter for microchannel heat exchangers, paving the way for the next generation microelectronic cooling applications.
Date Issued
2021-01-01
Date Acceptance
2020-09-15
Citation
Journal of Thermal Science and Technology, 2021, 16 (1), pp.1-20
ISSN
1880-5566
Publisher
Japan Society of Mechanical Engineers/Nihon Kikai Gakkai
Start Page
1
End Page
20
Journal / Book Title
Journal of Thermal Science and Technology
Volume
16
Issue
1
Copyright Statement
© 2021 by The Japan Society of Mechanical Engineers and The Heat Transfer Society of Japan
Sponsor
Engineering & Physical Science Research Council (EPSRC)
Identifier
https://www.jstage.jst.go.jp/article/jtst/16/1/16_2021jtst0007/_article
Grant Number
EP/T03338X/1
Subjects
Science & Technology
Physical Sciences
Thermodynamics
Joule heating
Nanopore
Bubble nucleation
Moving boundary problem
Microelectronic cooling
BOILING HEAT-TRANSFER
PRESSURE-DROP
FLOW
DYNAMICS
NUCLEATION
MICROCHANNELS
0915 Interdisciplinary Engineering
Energy
Publication Status
Published
Article Number
ARTN JTST0007