Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods

Fracturing fluid imbibition and retention are treated as a main mechanism for oil production from shale reservoirs. However, the oil–water exchange phenomenon during post-fracturing soaking periods has not been thoroughly studied. In this study, a water–oil flow model is built to investigate the wat...

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Main Authors: Fei Wang, Qiaoyun Chen, Jingchen Zhang, Yingqi Ruan, Ye Zhuang, Jian Zhu, Shicheng Zhang
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-10-01
Series:Frontiers in Earth Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/feart.2021.735972/full
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author Fei Wang
Qiaoyun Chen
Jingchen Zhang
Yingqi Ruan
Ye Zhuang
Jian Zhu
Shicheng Zhang
author_facet Fei Wang
Qiaoyun Chen
Jingchen Zhang
Yingqi Ruan
Ye Zhuang
Jian Zhu
Shicheng Zhang
author_sort Fei Wang
collection DOAJ
description Fracturing fluid imbibition and retention are treated as a main mechanism for oil production from shale reservoirs. However, the oil–water exchange phenomenon during post-fracturing soaking periods has not been thoroughly studied. In this study, a water–oil flow model is built to investigate the water imbibition and oil drainage phenomenon in hydraulically fractured shale. With the developed numerical simulator, the main characteristics of post-fracturing soaking, that is, pressure diffusion, water imbibition, and especially, the oil–water exchange behavior are simulated. Three key time points, that is, oil–water exchange equilibrium, steady exchange efficiency, and oil breakthrough in fracture are found. The oil–water exchange efficiency and exchange volume are also calculated. Moreover, the proposed model is validated by field wellhead pressure dynamics, indicating a relevance of time between the oil–water exchange efficiency and the wellhead pressure falloff derivatives. Finally, the influences of shale permeability, wettability, fracture complexity, and oil viscosity on the oil–water exchange behavior are investigated. Results indicate that the matrix of oil-wet shale almost does not suck water and discharge oil, and only the oil in natural fractures exchanges with the water in hydraulic fractures. The water-wet shale with low permeability, high oil viscosity, and few natural fractures needs extra soaking time to achieve good oil–water exchange performance. The suitable soaking period for the water-wet base case in this study is from 17.25 to 169 days, among which 64 days is the optimal soaking time.
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spelling doaj.art-16cfb02db9a94a04856dbbb74bd930c72022-12-21T21:29:20ZengFrontiers Media S.A.Frontiers in Earth Science2296-64632021-10-01910.3389/feart.2021.735972735972Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking PeriodsFei WangQiaoyun ChenJingchen ZhangYingqi RuanYe ZhuangJian ZhuShicheng ZhangFracturing fluid imbibition and retention are treated as a main mechanism for oil production from shale reservoirs. However, the oil–water exchange phenomenon during post-fracturing soaking periods has not been thoroughly studied. In this study, a water–oil flow model is built to investigate the water imbibition and oil drainage phenomenon in hydraulically fractured shale. With the developed numerical simulator, the main characteristics of post-fracturing soaking, that is, pressure diffusion, water imbibition, and especially, the oil–water exchange behavior are simulated. Three key time points, that is, oil–water exchange equilibrium, steady exchange efficiency, and oil breakthrough in fracture are found. The oil–water exchange efficiency and exchange volume are also calculated. Moreover, the proposed model is validated by field wellhead pressure dynamics, indicating a relevance of time between the oil–water exchange efficiency and the wellhead pressure falloff derivatives. Finally, the influences of shale permeability, wettability, fracture complexity, and oil viscosity on the oil–water exchange behavior are investigated. Results indicate that the matrix of oil-wet shale almost does not suck water and discharge oil, and only the oil in natural fractures exchanges with the water in hydraulic fractures. The water-wet shale with low permeability, high oil viscosity, and few natural fractures needs extra soaking time to achieve good oil–water exchange performance. The suitable soaking period for the water-wet base case in this study is from 17.25 to 169 days, among which 64 days is the optimal soaking time.https://www.frontiersin.org/articles/10.3389/feart.2021.735972/fullshale oilpost-fracturing soakingoil–water exchangesoaking timemodeling and simulation
spellingShingle Fei Wang
Qiaoyun Chen
Jingchen Zhang
Yingqi Ruan
Ye Zhuang
Jian Zhu
Shicheng Zhang
Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
Frontiers in Earth Science
shale oil
post-fracturing soaking
oil–water exchange
soaking time
modeling and simulation
title Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
title_full Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
title_fullStr Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
title_full_unstemmed Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
title_short Numerical Investigation of Oil–Water Exchange Behaviors in Shale During Post-Fracturing Soaking Periods
title_sort numerical investigation of oil water exchange behaviors in shale during post fracturing soaking periods
topic shale oil
post-fracturing soaking
oil–water exchange
soaking time
modeling and simulation
url https://www.frontiersin.org/articles/10.3389/feart.2021.735972/full
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