A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores

Multiphase flow is a common occurrence in the chemical and petroleum industries. The objective of this study was to apply the principles of multiphase flow to the production of petroleum fluids. A unified model was developed to predict the pressure profiles in wellbores using models available in the...

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Main Author: Ameen, Mohammad Mahbubul
Format: Text
Language:unknown
Published: UND Scholarly Commons 1993
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Online Access:https://commons.und.edu/theses/1123
https://commons.und.edu/cgi/viewcontent.cgi?article=2125&context=theses
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spelling ftunivndakota:oai:commons.und.edu:theses-2125 2023-05-15T15:14:23+02:00 A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores Ameen, Mohammad Mahbubul 1993-05-01T07:00:00Z application/pdf https://commons.und.edu/theses/1123 https://commons.und.edu/cgi/viewcontent.cgi?article=2125&context=theses unknown UND Scholarly Commons https://commons.und.edu/theses/1123 https://commons.und.edu/cgi/viewcontent.cgi?article=2125&context=theses Theses and Dissertations text 1993 ftunivndakota 2022-09-14T06:08:52Z Multiphase flow is a common occurrence in the chemical and petroleum industries. The objective of this study was to apply the principles of multiphase flow to the production of petroleum fluids. A unified model was developed to predict the pressure profiles in wellbores using models available in the literature, which was then used to develop a simulator. A rigorous approach was also taken to model heat transfer and predict the temperature profiles in wellbores unde, various circumstances. Our model is capable of predicting the pressure profiles for various channel orientation and geometries. It can handle flow in vertical, and inclined system. Countercurrent flow and flow in downward direction can also be simulated. With appropriate value for the parameters, the model applies to liquid-liquid systems in addition to the gas-liquid systems. The temperature profile in a wellbore is important to the petroleum industry. Fluid temperature determines various properties such as viscosity, density, the extent of dissolved gases etc. The pressure profile depends on these physical properties. In addition, the temperature profile is important in many production operations in arctic regions. A prior knowledge of the temperature and pressure profile enables the operators to take preventive measures against the clogging of pipelines due to hydrate or wax formation. Accurate temperature estimation is also important during such operations as drilling, cementing etc. Fluid temperature depends orji the extent of heat loss from the wellbore, which in turn, depends on the formation temperature. The present approach of temperature estimation assumes a constant heat flux between the wellbore and formation throughout the entire operation time. However, quite often the heat transfer rate between the formation and wellbore changes with time. We used the superposition principle to account for the gradual change of heat flux with time. Analytical solutions with the assumption of invariant and linear variation of heat flux with depth, and ... Text Arctic UND Scholarly Commons (University of North Dakota) Arctic
institution Open Polar
collection UND Scholarly Commons (University of North Dakota)
op_collection_id ftunivndakota
language unknown
description Multiphase flow is a common occurrence in the chemical and petroleum industries. The objective of this study was to apply the principles of multiphase flow to the production of petroleum fluids. A unified model was developed to predict the pressure profiles in wellbores using models available in the literature, which was then used to develop a simulator. A rigorous approach was also taken to model heat transfer and predict the temperature profiles in wellbores unde, various circumstances. Our model is capable of predicting the pressure profiles for various channel orientation and geometries. It can handle flow in vertical, and inclined system. Countercurrent flow and flow in downward direction can also be simulated. With appropriate value for the parameters, the model applies to liquid-liquid systems in addition to the gas-liquid systems. The temperature profile in a wellbore is important to the petroleum industry. Fluid temperature determines various properties such as viscosity, density, the extent of dissolved gases etc. The pressure profile depends on these physical properties. In addition, the temperature profile is important in many production operations in arctic regions. A prior knowledge of the temperature and pressure profile enables the operators to take preventive measures against the clogging of pipelines due to hydrate or wax formation. Accurate temperature estimation is also important during such operations as drilling, cementing etc. Fluid temperature depends orji the extent of heat loss from the wellbore, which in turn, depends on the formation temperature. The present approach of temperature estimation assumes a constant heat flux between the wellbore and formation throughout the entire operation time. However, quite often the heat transfer rate between the formation and wellbore changes with time. We used the superposition principle to account for the gradual change of heat flux with time. Analytical solutions with the assumption of invariant and linear variation of heat flux with depth, and ...
format Text
author Ameen, Mohammad Mahbubul
spellingShingle Ameen, Mohammad Mahbubul
A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
author_facet Ameen, Mohammad Mahbubul
author_sort Ameen, Mohammad Mahbubul
title A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
title_short A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
title_full A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
title_fullStr A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
title_full_unstemmed A Unified Model for Multi-Phase Flow and Heat Transfer in Wellbores
title_sort unified model for multi-phase flow and heat transfer in wellbores
publisher UND Scholarly Commons
publishDate 1993
url https://commons.und.edu/theses/1123
https://commons.und.edu/cgi/viewcontent.cgi?article=2125&context=theses
geographic Arctic
geographic_facet Arctic
genre Arctic
genre_facet Arctic
op_source Theses and Dissertations
op_relation https://commons.und.edu/theses/1123
https://commons.und.edu/cgi/viewcontent.cgi?article=2125&context=theses
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