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  4. Interface Tracking Investigation of the Sliding Bubbles Effects on Heat Transfer in the Laminar Regime
 
research article

Interface Tracking Investigation of the Sliding Bubbles Effects on Heat Transfer in the Laminar Regime

Wong, K. W.
•
Bures, L.  
•
Mikityuk, K.  
2022
Nuclear Technology

Helium gases are utilized to remove fission products from the molten salt fast reactor (MSFR) core during operation. Helium gases and other volatile fission products may be introduced into the intermediate heat exchanger channels. The effect of these gases on heat transfer is essential for the MSFR to operate properly, especially in laminar flow regimes. The computational fluid dynamics code PSI-BOIL was selected to examine this problem because of its interface tracking capability. A periodic square duct simulation created the flow regime, resulting in a sliding bubble regime. Following that, we examined the impact of heat transfer using an extended nonperiodic channel simulation with a succession of corner bubble arrays. Due to the combined effects of low thermal diffusivity and laminar flow characteristics, it is shown that the length of heat transfer augmentation may extend to at least five bubble diameters downstream of the bubble placement. Finally, we examined the impact of interphasic heat transfer between an inert gas and a liquid. The bulk of the heat transfer amplification effect was due to the motion of the bubbles rather than interphasic heat transfer.

  • Details
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Type
research article
DOI
10.1080/00295450.2021.1971025
Web of Science ID

WOS:000718241400001

Author(s)
Wong, K. W.
Bures, L.  
Mikityuk, K.  
Date Issued

2022

Published in
Nuclear Technology
Volume

208

Issue

8

Start page

1266

End page

1278

Subjects

Nuclear Science & Technology

•

Nuclear Science & Technology

•

sliding bubbles

•

heat transfer

•

laminar flow

•

interface tracking simulation

•

dynamic contact-angle

•

2-phase flow

•

surface-wettability

•

single bubbles

•

model

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LRS  
Available on Infoscience
December 4, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/183555
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