Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation

Unconventional oil and gas formations are abundant, have become an increasingly important part of the global energy supply, and are attracting increasing attention from the industry. Predicting key reservoir properties plays a significant role in both geological science and subsurface engineering wo...

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Main Authors: Lulu Liao, Gensheng Li, Yu Liang, Yijin Zeng
Format: Article
Language:English
Published: MDPI AG 2022-11-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/15/23/9094
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author Lulu Liao
Gensheng Li
Yu Liang
Yijin Zeng
author_facet Lulu Liao
Gensheng Li
Yu Liang
Yijin Zeng
author_sort Lulu Liao
collection DOAJ
description Unconventional oil and gas formations are abundant, have become an increasingly important part of the global energy supply, and are attracting increasing attention from the industry. Predicting key reservoir properties plays a significant role in both geological science and subsurface engineering workflows. With the advent of horizontal well drilling and multiple-stage hydraulic fracturing, the Montney Shale formation is one of the most promising and productive shale plays in Canada. However, very few academic papers discuss its in situ stress, reservoir pressure, and permeability, which are essential for the development of the Montney Shale. The objective of this study is to analyze the geo-stress, the pore pressure, and several key reservoir properties by using diagnostic fracture injection test (DFIT) data from the Montney Shale. One horizontal well from the Wapiti field has been analyzed with a set of DFIT data, and its results show that the general pressure and Gdp/dG responses from Well-A indicate a signature of height recession/transverse storage. In the study, the Tangent Line method, the Compliance method, and the Variable Compliance method have been applied to estimate the key reservoir properties. As a result, the Well-A DFIT analysis estimates that the closure pressure is ranging from 34.367 to 39.344 MPa, contributing to the stress gradient from 14.09 to 16.13 KPa/m for the formation. The pore pressure is ranging from 20.82 to 24.58 MPa, contributing to the pore pressure gradient from 8.54 to 10.07 KPa/m for the formation. The porosity is ranging from 3% to 6%. These reservoir properties are contoured cross the Montney Shale formation. Using the DFIT’s numerical simulation and history matching, the reservoir permeability is 0.024 md, fracture length is 13.44 m, and fracture geometries are analyzed by different models. Moreover, the physics behind the DFIT are analyzed and discussed in detail. For the first time, three different analysis methods have been applied to estimate a series of key reservoir properties for the case wells in the Montney Shale formation. This approach can not only reduce the potential prediction error caused by a single method application but also increase the persuasiveness of the assessment and save time, ensuring the efficient implementation of engineering operations. Given the significance of quantifying in situ stress and reservoir pore pressure in unconventional hydrocarbon exploration and development, this study could help the operator to quickly understand the stress regimes, the fracture geometry, and the formation properties of the Montney Shale formation in the Wapiti field. Furthermore, the interpreted results demonstrated in this paper are adding substantial business value to the asset, especially in terms of improving the hydraulic fracturing design and, thus, accelerating the cashflow from production.
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spelling doaj.art-0aea54a6c17d4e00a70c79e597e1d7772023-11-24T10:55:15ZengMDPI AGEnergies1996-10732022-11-011523909410.3390/en15239094Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale FormationLulu Liao0Gensheng Li1Yu Liang2Yijin Zeng3Department of Petroleum Engineering, China University of Petroleum (Beijing), Changping District, Beijing 102200, ChinaDepartment of Petroleum Engineering, China University of Petroleum (Beijing), Changping District, Beijing 102200, ChinaSinopec Research Institute of Petroleum Engineering, Changping District, Beijing 102200, ChinaSinopec Research Institute of Petroleum Engineering, Changping District, Beijing 102200, ChinaUnconventional oil and gas formations are abundant, have become an increasingly important part of the global energy supply, and are attracting increasing attention from the industry. Predicting key reservoir properties plays a significant role in both geological science and subsurface engineering workflows. With the advent of horizontal well drilling and multiple-stage hydraulic fracturing, the Montney Shale formation is one of the most promising and productive shale plays in Canada. However, very few academic papers discuss its in situ stress, reservoir pressure, and permeability, which are essential for the development of the Montney Shale. The objective of this study is to analyze the geo-stress, the pore pressure, and several key reservoir properties by using diagnostic fracture injection test (DFIT) data from the Montney Shale. One horizontal well from the Wapiti field has been analyzed with a set of DFIT data, and its results show that the general pressure and Gdp/dG responses from Well-A indicate a signature of height recession/transverse storage. In the study, the Tangent Line method, the Compliance method, and the Variable Compliance method have been applied to estimate the key reservoir properties. As a result, the Well-A DFIT analysis estimates that the closure pressure is ranging from 34.367 to 39.344 MPa, contributing to the stress gradient from 14.09 to 16.13 KPa/m for the formation. The pore pressure is ranging from 20.82 to 24.58 MPa, contributing to the pore pressure gradient from 8.54 to 10.07 KPa/m for the formation. The porosity is ranging from 3% to 6%. These reservoir properties are contoured cross the Montney Shale formation. Using the DFIT’s numerical simulation and history matching, the reservoir permeability is 0.024 md, fracture length is 13.44 m, and fracture geometries are analyzed by different models. Moreover, the physics behind the DFIT are analyzed and discussed in detail. For the first time, three different analysis methods have been applied to estimate a series of key reservoir properties for the case wells in the Montney Shale formation. This approach can not only reduce the potential prediction error caused by a single method application but also increase the persuasiveness of the assessment and save time, ensuring the efficient implementation of engineering operations. Given the significance of quantifying in situ stress and reservoir pore pressure in unconventional hydrocarbon exploration and development, this study could help the operator to quickly understand the stress regimes, the fracture geometry, and the formation properties of the Montney Shale formation in the Wapiti field. Furthermore, the interpreted results demonstrated in this paper are adding substantial business value to the asset, especially in terms of improving the hydraulic fracturing design and, thus, accelerating the cashflow from production.https://www.mdpi.com/1996-1073/15/23/9094unconventional formationsDFITMontneybusiness valuereservoir key properties
spellingShingle Lulu Liao
Gensheng Li
Yu Liang
Yijin Zeng
Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
Energies
unconventional formations
DFIT
Montney
business value
reservoir key properties
title Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
title_full Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
title_fullStr Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
title_full_unstemmed Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
title_short Diagnostic Fracture Injection Tests Analysis and Numerical Simulation in Montney Shale Formation
title_sort diagnostic fracture injection tests analysis and numerical simulation in montney shale formation
topic unconventional formations
DFIT
Montney
business value
reservoir key properties
url https://www.mdpi.com/1996-1073/15/23/9094
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AT genshengli diagnosticfractureinjectiontestsanalysisandnumericalsimulationinmontneyshaleformation
AT yuliang diagnosticfractureinjectiontestsanalysisandnumericalsimulationinmontneyshaleformation
AT yijinzeng diagnosticfractureinjectiontestsanalysisandnumericalsimulationinmontneyshaleformation