The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree

A method is proposed for interpreting thermogasdynamic studies of vertical gas wells that are incomplete in terms of the reservoir penetration degree on the basis of inverse tasks theory. The inverse task has the aim to determine the reservoir parameters for nonisothermal filtration of a real gas to...

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Main Author: M.N. Shamsiev
Format: Article
Language:English
Published: Georesursy Ltd. 2018-03-01
Series:Georesursy
Subjects:
Online Access:https://geors.ru/archive/article/907/
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spelling doaj-e0c9415fe78d45dea76c5781c451f2bf2020-11-24T23:17:46ZengGeoresursy Ltd.Georesursy1608-50431608-50782018-03-01201394310.18599/grs.2018.1.39-43The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree M.N. Shamsiev0Institute of Mechanics and Engineering, Kazan Science Center of the Russian Academy of SciencesA method is proposed for interpreting thermogasdynamic studies of vertical gas wells that are incomplete in terms of the reservoir penetration degree on the basis of inverse tasks theory. The inverse task has the aim to determine the reservoir parameters for nonisothermal filtration of a real gas to a vertical well in an anisotropic reservoir. In this case, the values ​​of the pressure and temperature at the well bottom, recorded by deep instruments, are assumed to be known. The solution of the inverse task is to minimize the functional. The iterative sequence for minimizing the functional is based on the Levenberg-Marquardt method. The convergence and stability of the iterative process for various input information have been studied on specific examples. The effect of reservoir anisotropy on the pressure and temperature changes at the bottom of the well is studied. It is shown that if the reservoir is not completely penetrated by the results of pressure and temperature measurements at the bottom of the well, anisotropy of the reservoir can be estimated after its launch. It should be noted that when studying thermodynamic processes in the vicinity of a well, which penetrates thick layers, it is necessary to take into account not only the heat exchange of the reservoir with the surrounding rocks, but also the geothermal temperature gradient.https://geors.ru/archive/article/907/anisotropythermogasdynamic studiesincomplete well
collection DOAJ
language English
format Article
sources DOAJ
author M.N. Shamsiev
spellingShingle M.N. Shamsiev
The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
Georesursy
anisotropy
thermogasdynamic studies
incomplete well
author_facet M.N. Shamsiev
author_sort M.N. Shamsiev
title The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
title_short The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
title_full The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
title_fullStr The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
title_full_unstemmed The results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
title_sort results interpretation of thermogasdynamic studies of vertical gas wells incomplete in terms of the reservoir penetration degree
publisher Georesursy Ltd.
series Georesursy
issn 1608-5043
1608-5078
publishDate 2018-03-01
description A method is proposed for interpreting thermogasdynamic studies of vertical gas wells that are incomplete in terms of the reservoir penetration degree on the basis of inverse tasks theory. The inverse task has the aim to determine the reservoir parameters for nonisothermal filtration of a real gas to a vertical well in an anisotropic reservoir. In this case, the values ​​of the pressure and temperature at the well bottom, recorded by deep instruments, are assumed to be known. The solution of the inverse task is to minimize the functional. The iterative sequence for minimizing the functional is based on the Levenberg-Marquardt method. The convergence and stability of the iterative process for various input information have been studied on specific examples. The effect of reservoir anisotropy on the pressure and temperature changes at the bottom of the well is studied. It is shown that if the reservoir is not completely penetrated by the results of pressure and temperature measurements at the bottom of the well, anisotropy of the reservoir can be estimated after its launch. It should be noted that when studying thermodynamic processes in the vicinity of a well, which penetrates thick layers, it is necessary to take into account not only the heat exchange of the reservoir with the surrounding rocks, but also the geothermal temperature gradient.
topic anisotropy
thermogasdynamic studies
incomplete well
url https://geors.ru/archive/article/907/
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