Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes

Two-phase slug flow is a common occurrence in wells, riser pipes and pipelines of crude oil and natural gas systems. Current predictive tools for two-phase flow are based on either the mixture model or the mechanistic two-fluid model. The latter one, also called phenomenological model, r...

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Main Authors: Lakehal, D., Lizarraga-Garcia, Enrique, Buongiorno, Jacopo, Alsafran, Eisa
Other Authors: Massachusetts Institute of Technology. Department of Mechanical Engineering
Format: Article
Language:en_US
Published: Curran Associates, Inc. 2017
Online Access:http://hdl.handle.net/1721.1/108239
https://orcid.org/0000-0002-3448-2488
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author Lakehal, D.
Lizarraga-Garcia, Enrique
Buongiorno, Jacopo
Alsafran, Eisa
author2 Massachusetts Institute of Technology. Department of Mechanical Engineering
author_facet Massachusetts Institute of Technology. Department of Mechanical Engineering
Lakehal, D.
Lizarraga-Garcia, Enrique
Buongiorno, Jacopo
Alsafran, Eisa
author_sort Lakehal, D.
collection MIT
description Two-phase slug flow is a common occurrence in wells, riser pipes and pipelines of crude oil and natural gas systems. Current predictive tools for two-phase flow are based on either the mixture model or the mechanistic two-fluid model. The latter one, also called phenomenological model, requires the use of closure relations to solve the transfer of mass, momentum and energy between the phases, in the respective conservation equations, so that integral flow parameters such as liquid holdup (or void fraction) and pressure gradient can be predicted. How ever, these closure relations carry the highest uncertainties in the model, since they are obtained empirically or through the use of overly simplified assumptions. In particular, significant discrepancies have been found between experimental data and closure relations for the Taylor bubble velocity in slug flow, which has been determined through an in-house study to strongly affect the pressure gradient and liquid holdup predicted by the mechanistic models of (Orell and Rembrand, 1986), (Ansari et al., 1994), and (Petalas and Aziz, 2000). In this work, Computational Fluid Dynamics (CFD) and the Level Set (LS) interface tracking method(ITM), implemented in the commercial code TransAT®, are mployed to simulate the motion of Taylor bubbles in slug flow. Therefore, a numerical database is being generated to develop a new, high-fidelity closure relation for the Taylor bubble velocity as a function of the fluid properties and flow conditions, rendered non-dimensional through the use of the Froude, Reynolds, Eötvös and Morton numbers, and pipe inclination angle. The simulations suggest that in inclined pipes the Taylor bubble velocity is strongly reduced if there is no lubricating liquid film between the bubble and the wall. A simple analytical model predicting the drainage of this lubricating film is also presented. .
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spelling mit-1721.1/1082392022-09-27T10:01:36Z Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes Lakehal, D. Lizarraga-Garcia, Enrique Buongiorno, Jacopo Alsafran, Eisa Massachusetts Institute of Technology. Department of Mechanical Engineering Massachusetts Institute of Technology. Department of Nuclear Science and Engineering Buongiorno Lizarraga-Garcia, Enrique Buongiorno, Jacopo Alsafran, Eisa Two-phase slug flow is a common occurrence in wells, riser pipes and pipelines of crude oil and natural gas systems. Current predictive tools for two-phase flow are based on either the mixture model or the mechanistic two-fluid model. The latter one, also called phenomenological model, requires the use of closure relations to solve the transfer of mass, momentum and energy between the phases, in the respective conservation equations, so that integral flow parameters such as liquid holdup (or void fraction) and pressure gradient can be predicted. How ever, these closure relations carry the highest uncertainties in the model, since they are obtained empirically or through the use of overly simplified assumptions. In particular, significant discrepancies have been found between experimental data and closure relations for the Taylor bubble velocity in slug flow, which has been determined through an in-house study to strongly affect the pressure gradient and liquid holdup predicted by the mechanistic models of (Orell and Rembrand, 1986), (Ansari et al., 1994), and (Petalas and Aziz, 2000). In this work, Computational Fluid Dynamics (CFD) and the Level Set (LS) interface tracking method(ITM), implemented in the commercial code TransAT®, are mployed to simulate the motion of Taylor bubbles in slug flow. Therefore, a numerical database is being generated to develop a new, high-fidelity closure relation for the Taylor bubble velocity as a function of the fluid properties and flow conditions, rendered non-dimensional through the use of the Froude, Reynolds, Eötvös and Morton numbers, and pipe inclination angle. The simulations suggest that in inclined pipes the Taylor bubble velocity is strongly reduced if there is no lubricating liquid film between the bubble and the wall. A simple analytical model predicting the drainage of this lubricating film is also presented. . 2017-04-19T13:38:34Z 2017-04-19T13:38:34Z 2015-06 Article http://purl.org/eprint/type/ConferencePaper 978-1-5108-1144-7 http://hdl.handle.net/1721.1/108239 Lizarraga-Garcia, E., J. Buongiorno, E. Al-Safran and D. Lakeha. "Development of a new CFD-based unified closure relation for Taylor bubble velocity in two-phase slug flow in pipes." 17th International Conference on Multiphase Technology 2015 (June 2015), pp. 93-107. ©2015. https://orcid.org/0000-0002-3448-2488 en_US http://www.proceedings.com/27675.html 17th International Conference on Multiphase Technology 2015 Creative Commons Attribution-Noncommercial-Share Alike http://creativecommons.org/licenses/by-nc-sa/4.0/ application/pdf Curran Associates, Inc. Prof. Buongiorno via Chris Sherratt
spellingShingle Lakehal, D.
Lizarraga-Garcia, Enrique
Buongiorno, Jacopo
Alsafran, Eisa
Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title_full Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title_fullStr Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title_full_unstemmed Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title_short Development of a New Cfd-Based Unified Closure Relation for Taylor Bubble Velocity in Two-Phase Slug Flow in Pipes
title_sort development of a new cfd based unified closure relation for taylor bubble velocity in two phase slug flow in pipes
url http://hdl.handle.net/1721.1/108239
https://orcid.org/0000-0002-3448-2488
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