Numerical identification of critical erosion prone areas in tube heat exchangers

The failure of tube heat exchangers is an acute problem in industry and, in most cases, is due to the solid particle erosion of a few tubes. Identifying the critical erosion surfaces and thereafter changing the particle impingement pattern on the surfaces is one of the solutions to increase the life...

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Main Authors: Weimin Gao, Junguo Li, Yungang Li, Lingxue Kong
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Engineering Applications of Computational Fluid Mechanics
Subjects:
Online Access:http://dx.doi.org/10.1080/19942060.2020.1835735
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spelling doaj-2db95dd7ec4b408a99c957893ef7809d2020-12-07T17:17:46ZengTaylor & Francis GroupEngineering Applications of Computational Fluid Mechanics1994-20601997-003X2020-01-011411429144410.1080/19942060.2020.18357351835735Numerical identification of critical erosion prone areas in tube heat exchangersWeimin Gao0Junguo Li1Yungang Li2Lingxue Kong3School of Metallurgy and Energy, North China University of Science and TechnologySchool of Metallurgy and Energy, North China University of Science and TechnologySchool of Metallurgy and Energy, North China University of Science and TechnologyInstitute for Frontier Materials, Deakin UniversityThe failure of tube heat exchangers is an acute problem in industry and, in most cases, is due to the solid particle erosion of a few tubes. Identifying the critical erosion surfaces and thereafter changing the particle impingement pattern on the surfaces is one of the solutions to increase the lifetime of heat exchangers. In this work the fluid flow, solid particle motion and metal erosion of different two-pass copper-tube heat exchangers were simulated with a refined model and the sophisticated RANS-SST approach. The results showed the importance of the model in capturing the asymmetrical flow, uneven fluid distribution through tube bundle and other flow features for better erosion prediction. The erosion characteristics of three heat exchangers were compared to evaluate their structure with respect to producing low erosion. The simulations provided basic data for identifying the critical areas and damage locations of each heat exchanger. It was found that the particle separation in the inlet header altered the critical erosion locations but did not significantly affect the erosion rate. Theerosion rates at critical areas were also predicted. The results can be applied for predicting the service life and improving the structure of tube heat exchangers.http://dx.doi.org/10.1080/19942060.2020.1835735metal erosionsolid particle impactflow patterntube heat exchangererosion modeling
collection DOAJ
language English
format Article
sources DOAJ
author Weimin Gao
Junguo Li
Yungang Li
Lingxue Kong
spellingShingle Weimin Gao
Junguo Li
Yungang Li
Lingxue Kong
Numerical identification of critical erosion prone areas in tube heat exchangers
Engineering Applications of Computational Fluid Mechanics
metal erosion
solid particle impact
flow pattern
tube heat exchanger
erosion modeling
author_facet Weimin Gao
Junguo Li
Yungang Li
Lingxue Kong
author_sort Weimin Gao
title Numerical identification of critical erosion prone areas in tube heat exchangers
title_short Numerical identification of critical erosion prone areas in tube heat exchangers
title_full Numerical identification of critical erosion prone areas in tube heat exchangers
title_fullStr Numerical identification of critical erosion prone areas in tube heat exchangers
title_full_unstemmed Numerical identification of critical erosion prone areas in tube heat exchangers
title_sort numerical identification of critical erosion prone areas in tube heat exchangers
publisher Taylor & Francis Group
series Engineering Applications of Computational Fluid Mechanics
issn 1994-2060
1997-003X
publishDate 2020-01-01
description The failure of tube heat exchangers is an acute problem in industry and, in most cases, is due to the solid particle erosion of a few tubes. Identifying the critical erosion surfaces and thereafter changing the particle impingement pattern on the surfaces is one of the solutions to increase the lifetime of heat exchangers. In this work the fluid flow, solid particle motion and metal erosion of different two-pass copper-tube heat exchangers were simulated with a refined model and the sophisticated RANS-SST approach. The results showed the importance of the model in capturing the asymmetrical flow, uneven fluid distribution through tube bundle and other flow features for better erosion prediction. The erosion characteristics of three heat exchangers were compared to evaluate their structure with respect to producing low erosion. The simulations provided basic data for identifying the critical areas and damage locations of each heat exchanger. It was found that the particle separation in the inlet header altered the critical erosion locations but did not significantly affect the erosion rate. Theerosion rates at critical areas were also predicted. The results can be applied for predicting the service life and improving the structure of tube heat exchangers.
topic metal erosion
solid particle impact
flow pattern
tube heat exchanger
erosion modeling
url http://dx.doi.org/10.1080/19942060.2020.1835735
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