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Numerical modeling of evaporating thin liquid film instability on a heated cylindrical rod with parallel and cross vapor flow

Authors
Shin, SeungwonAbdel-Khalik, S. I.
Issue Date
May-2007
Publisher
AMER NUCLEAR SOCIETY
Citation
NUCLEAR SCIENCE AND ENGINEERING, v.156, no.1, pp.24 - 39
Journal Title
NUCLEAR SCIENCE AND ENGINEERING
Volume
156
Number
1
Start Page
24
End Page
39
URI
https://scholarworks.bwise.kr/hongik/handle/2020.sw.hongik/23594
DOI
10.13182/NSE07-A2682
ISSN
0029-5639
Abstract
The behavior of an evaporating thin liquid film on,a nonuniformly heated cylindrical rod with both parallel and cross vaporflow has been numerically investigated. The aim is to develop a mechanistic model for local dry out in. boiling water reactors (BWRs). The liquid film on a full-length BWR fuel rod may experience significant axial and azimuthal heat flux gradients and cross flow due to variations in the thermal-hydraulic conditions in surrounding subchannels caused by proximity to an inserted control blade tip and/or the top of part-length fuel rods. Such heatflux gradients coupled with localized crossflow may cause the liquid film on the fuel rod surface to,rupture by hydrodynamic instability, thereby forming a dry hot spot. These localized dryout phenomena cannot be accurately predicted by traditional subchannel analysis methods in conjunction with empirical dryout correlations. To this end, a numerical model based on the level contour reconstruction method has been developed The model includes a ghost-cell extrapolation technique,to handle the complex interface geometry. Additionally, a sharp interface temperature technique has been implemented Application of the model to BWR fuel rods shows that localized cross flow coupled with heatflux gradients can lead to liquid film rupture and dry spot formation.
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