Transient flowing-fluid temperature modeling in reservoirs with large drawdowns
Abstract Modern downhole temperature measurements indicate that bottomhole fluid temperature can be significantly higher or lower than the original reservoir temperature, especially in reservoirs where high-pressure drawdown is expected during production. This recent finding contradicts the isotherm...
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doaj-79234faae4ec42b3b08ba1d9495e798a2020-11-24T20:47:59ZengSpringerOpenJournal of Petroleum Exploration and Production Technology2190-05582190-05662017-11-018379981110.1007/s13202-017-0397-0Transient flowing-fluid temperature modeling in reservoirs with large drawdownsN. Chevarunotai0A. R. Hasan1C. S. Kabir2R. Islam3Chevron Thailand Exploration and Production Ltd.Department of Petroleum Engineering, Texas A&M UniversityDepartment of Petroleum Engineering, University of HoustonDepartment of Petroleum Engineering, Texas A&M UniversityAbstract Modern downhole temperature measurements indicate that bottomhole fluid temperature can be significantly higher or lower than the original reservoir temperature, especially in reservoirs where high-pressure drawdown is expected during production. This recent finding contradicts the isothermal assumption originally made for routine calculations. In a high-pressure drawdown environment, the Joule–Thomson (J–T) phenomenon plays an important role in fluid temperature alteration in the reservoir. This paper presents a robust analytical model to estimate the flowing-fluid temperature distribution in a reservoir that accounts for the J–T heating or cooling effect. All significant heat transfer mechanisms for fluid flow in the reservoir, including heat transfer due to convection, J–T phenomenon, and heat transfer from overburden and under-burden formations, are incorporated in this study. The proposed model successfully validates the results of a rigorous numerical model that intrinsically honored field data.http://link.springer.com/article/10.1007/s13202-017-0397-0Transient heat transport in porous mediaJoule–Thomson effectHeat transport to under- and overburden formationsAnalytical solutionsValidation of analytical solutions with numerical results |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
N. Chevarunotai A. R. Hasan C. S. Kabir R. Islam |
spellingShingle |
N. Chevarunotai A. R. Hasan C. S. Kabir R. Islam Transient flowing-fluid temperature modeling in reservoirs with large drawdowns Journal of Petroleum Exploration and Production Technology Transient heat transport in porous media Joule–Thomson effect Heat transport to under- and overburden formations Analytical solutions Validation of analytical solutions with numerical results |
author_facet |
N. Chevarunotai A. R. Hasan C. S. Kabir R. Islam |
author_sort |
N. Chevarunotai |
title |
Transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
title_short |
Transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
title_full |
Transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
title_fullStr |
Transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
title_full_unstemmed |
Transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
title_sort |
transient flowing-fluid temperature modeling in reservoirs with large drawdowns |
publisher |
SpringerOpen |
series |
Journal of Petroleum Exploration and Production Technology |
issn |
2190-0558 2190-0566 |
publishDate |
2017-11-01 |
description |
Abstract Modern downhole temperature measurements indicate that bottomhole fluid temperature can be significantly higher or lower than the original reservoir temperature, especially in reservoirs where high-pressure drawdown is expected during production. This recent finding contradicts the isothermal assumption originally made for routine calculations. In a high-pressure drawdown environment, the Joule–Thomson (J–T) phenomenon plays an important role in fluid temperature alteration in the reservoir. This paper presents a robust analytical model to estimate the flowing-fluid temperature distribution in a reservoir that accounts for the J–T heating or cooling effect. All significant heat transfer mechanisms for fluid flow in the reservoir, including heat transfer due to convection, J–T phenomenon, and heat transfer from overburden and under-burden formations, are incorporated in this study. The proposed model successfully validates the results of a rigorous numerical model that intrinsically honored field data. |
topic |
Transient heat transport in porous media Joule–Thomson effect Heat transport to under- and overburden formations Analytical solutions Validation of analytical solutions with numerical results |
url |
http://link.springer.com/article/10.1007/s13202-017-0397-0 |
work_keys_str_mv |
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1716809297864687616 |