Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel

In this study, we examined the condensing behavior of single and multiple bubbles of pure steam in a subcooled liquid phase using a fully compressible two-phase homogeneous mixture method that is solved by an implicit dual-time preconditioned technique. The interface between the liquid and vapor pha...

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Main Authors: SalaiSargunan S Paramanantham, Dong-Hyun Kim, Warn-Gyu Park
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/12/4/611
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spelling doaj-d4df012ba26b49e78669ae5ed53c67e62020-11-25T02:33:00ZengMDPI AGSymmetry2073-89942020-04-011261161110.3390/sym12040611Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow ChannelSalaiSargunan S Paramanantham0Dong-Hyun Kim1Warn-Gyu Park2School of Mechanical Engineering, Pusan National University, Busan 46241, KoreaSchool of Mechanical Engineering, Pusan National University, Busan 46241, KoreaSchool of Mechanical Engineering, Pusan National University, Busan 46241, KoreaIn this study, we examined the condensing behavior of single and multiple bubbles of pure steam in a subcooled liquid phase using a fully compressible two-phase homogeneous mixture method that is solved by an implicit dual-time preconditioned technique. The interface between the liquid and vapor phases was determined by the advection equations using a compressive high-resolution interfacing capturing method. The spurious current reduced near the interface, a smoothing filter is applied to the progress curvature calculation. The sensitivity study carried out to predict the empirical constant by using Lee’s mass transfer model. A comparison of the numerical and experimental results highlighted that the proposed model accurately predicted the behavior of the definite condensing bubble. Furthermore, the single and multiple bubble condensation behaviors were investigated for different initial subcooled temperatures, and bubble diameters under various gradient flow, such as velocity gradient, temperature gradient, and velocity and temperature gradients. Subsequently, the effect of multiple bubbles flows in different bubble pattern forms, and their condensation was studied. The coalescence of bubbles depends on the subcooled temperature. Furthermore, the bubble diameter, the gap between the bubbles, and the flow rate of the bubbles were also observed.https://www.mdpi.com/2073-8994/12/4/611gradient flowphase changesubcooled flow boilinghomogeneous mixture modelbubble rodssteam condensation
collection DOAJ
language English
format Article
sources DOAJ
author SalaiSargunan S Paramanantham
Dong-Hyun Kim
Warn-Gyu Park
spellingShingle SalaiSargunan S Paramanantham
Dong-Hyun Kim
Warn-Gyu Park
Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
Symmetry
gradient flow
phase change
subcooled flow boiling
homogeneous mixture model
bubble rods
steam condensation
author_facet SalaiSargunan S Paramanantham
Dong-Hyun Kim
Warn-Gyu Park
author_sort SalaiSargunan S Paramanantham
title Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
title_short Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
title_full Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
title_fullStr Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
title_full_unstemmed Numerical Study of Bubble Behavior under Gradient Flows during Subcooled Flow Boiling in Vertical Flow Channel
title_sort numerical study of bubble behavior under gradient flows during subcooled flow boiling in vertical flow channel
publisher MDPI AG
series Symmetry
issn 2073-8994
publishDate 2020-04-01
description In this study, we examined the condensing behavior of single and multiple bubbles of pure steam in a subcooled liquid phase using a fully compressible two-phase homogeneous mixture method that is solved by an implicit dual-time preconditioned technique. The interface between the liquid and vapor phases was determined by the advection equations using a compressive high-resolution interfacing capturing method. The spurious current reduced near the interface, a smoothing filter is applied to the progress curvature calculation. The sensitivity study carried out to predict the empirical constant by using Lee’s mass transfer model. A comparison of the numerical and experimental results highlighted that the proposed model accurately predicted the behavior of the definite condensing bubble. Furthermore, the single and multiple bubble condensation behaviors were investigated for different initial subcooled temperatures, and bubble diameters under various gradient flow, such as velocity gradient, temperature gradient, and velocity and temperature gradients. Subsequently, the effect of multiple bubbles flows in different bubble pattern forms, and their condensation was studied. The coalescence of bubbles depends on the subcooled temperature. Furthermore, the bubble diameter, the gap between the bubbles, and the flow rate of the bubbles were also observed.
topic gradient flow
phase change
subcooled flow boiling
homogeneous mixture model
bubble rods
steam condensation
url https://www.mdpi.com/2073-8994/12/4/611
work_keys_str_mv AT salaisargunansparamanantham numericalstudyofbubblebehaviorundergradientflowsduringsubcooledflowboilinginverticalflowchannel
AT donghyunkim numericalstudyofbubblebehaviorundergradientflowsduringsubcooledflowboilinginverticalflowchannel
AT warngyupark numericalstudyofbubblebehaviorundergradientflowsduringsubcooledflowboilinginverticalflowchannel
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