A CFD study of the effect of venturi geometry on high pressure wet gas metering

Venturi meter is increasingly being preferred as wet gas flow meter because of its simple construction and ease of operation. It has been found that the performance of venturi in single phase gas is very different from that of water. In this work, with a view to optimise the design, the effects of d...

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Bibliographic Details
Published in:International Journal of Oil, Gas and Coal Technology
Main Author: Perumal K.; Krishnan J.
Format: Article
Language:English
Published: Inderscience Publishers 2013
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84883506188&doi=10.1504%2fIJOGCT.2013.056101&partnerID=40&md5=985cb4fa64503fd6fef96df9939ba71e
id 2-s2.0-84883506188
spelling 2-s2.0-84883506188
Perumal K.; Krishnan J.
A CFD study of the effect of venturi geometry on high pressure wet gas metering
2013
International Journal of Oil, Gas and Coal Technology
6
5
10.1504/IJOGCT.2013.056101
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84883506188&doi=10.1504%2fIJOGCT.2013.056101&partnerID=40&md5=985cb4fa64503fd6fef96df9939ba71e
Venturi meter is increasingly being preferred as wet gas flow meter because of its simple construction and ease of operation. It has been found that the performance of venturi in single phase gas is very different from that of water. In this work, with a view to optimise the design, the effects of diameter, diameter ratio and convergent angle on the performance of a venturi meter for wet gas metering has been studied by CFD modelling of the high pressure wet gas flow. The performance of eight wet gas correlations for flow prediction has also been studied. Simulation results reveal that a convergent angle of 10.5 deg to be a better choice for wet gas metering. Homogeneous flow model, Steven's and De Leeuw's correlations are found to be better than the other correlations. While homogeneous flow model performs consistently, Steven's and De Leeuw's performance drops at 40 bar. Copyright © 2013 Inderscience Enterprises Ltd.
Inderscience Publishers
17533309
English
Article

author Perumal K.; Krishnan J.
spellingShingle Perumal K.; Krishnan J.
A CFD study of the effect of venturi geometry on high pressure wet gas metering
author_facet Perumal K.; Krishnan J.
author_sort Perumal K.; Krishnan J.
title A CFD study of the effect of venturi geometry on high pressure wet gas metering
title_short A CFD study of the effect of venturi geometry on high pressure wet gas metering
title_full A CFD study of the effect of venturi geometry on high pressure wet gas metering
title_fullStr A CFD study of the effect of venturi geometry on high pressure wet gas metering
title_full_unstemmed A CFD study of the effect of venturi geometry on high pressure wet gas metering
title_sort A CFD study of the effect of venturi geometry on high pressure wet gas metering
publishDate 2013
container_title International Journal of Oil, Gas and Coal Technology
container_volume 6
container_issue 5
doi_str_mv 10.1504/IJOGCT.2013.056101
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84883506188&doi=10.1504%2fIJOGCT.2013.056101&partnerID=40&md5=985cb4fa64503fd6fef96df9939ba71e
description Venturi meter is increasingly being preferred as wet gas flow meter because of its simple construction and ease of operation. It has been found that the performance of venturi in single phase gas is very different from that of water. In this work, with a view to optimise the design, the effects of diameter, diameter ratio and convergent angle on the performance of a venturi meter for wet gas metering has been studied by CFD modelling of the high pressure wet gas flow. The performance of eight wet gas correlations for flow prediction has also been studied. Simulation results reveal that a convergent angle of 10.5 deg to be a better choice for wet gas metering. Homogeneous flow model, Steven's and De Leeuw's correlations are found to be better than the other correlations. While homogeneous flow model performs consistently, Steven's and De Leeuw's performance drops at 40 bar. Copyright © 2013 Inderscience Enterprises Ltd.
publisher Inderscience Publishers
issn 17533309
language English
format Article
accesstype
record_format scopus
collection Scopus
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