Study on stress sensitivity of lignite reservoir under salinity and pH composite system

The stress sensitivity of a coal reservoir is an important factor affecting the productivity of the coalbed methane well. Determining methods to reduce the stress sensitivity of coal reservoirs in the process of coalbed methane well drainage and recovery is of significance for the efficient developm...

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Main Authors: Boyang Wang, Yong Qin, Jian Shen, Gang Wang
Format: Article
Language:English
Published: SAGE Publishing 2018-05-01
Series:Energy Exploration & Exploitation
Online Access:https://doi.org/10.1177/0144598717740957
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spelling doaj-3f8544098dd0416db66507713327d6b12020-11-25T04:08:44ZengSAGE PublishingEnergy Exploration & Exploitation0144-59872048-40542018-05-013610.1177/0144598717740957Study on stress sensitivity of lignite reservoir under salinity and pH composite systemBoyang Wang0Yong Qin1Jian Shen2Gang Wang3School of Resources and Geosciences, China University of Mining and Technology, Xuzhou, ChinaSchool of Resources and Geosciences, China University of Mining and Technology, Xuzhou, ChinaSchool of Resources and Geosciences, China University of Mining and Technology, Xuzhou, ChinaKey Laboratory of Resource Survey and Research of Hebei Province, , Handan, ChinaThe stress sensitivity of a coal reservoir is an important factor affecting the productivity of the coalbed methane well. Determining methods to reduce the stress sensitivity of coal reservoirs in the process of coalbed methane well drainage and recovery is of significance for the efficient development of coalbed methane. Based on a multiindex comprehensive evaluation of the stress sensitivity of a lignite reservoir under different pH and salinity, a permeability prediction model and productivity model of the coalbed methane well are established in consideration of the stress sensitivity under the influence of pH and salinity. Analysis is conducted on changes in permeability with effective stress and the mechanism involved in the stress-sensitive effect in a lignite reservoir under these two influencing factors. Results show that the relation between dimensionless permeability and effective stress is in good agreement with a negative exponential relationship. In addition, the relation between the stress-sensitive coefficient and effective stress can be divided into a fluctuation stage and a stabilization stage using 15–17 MPa as the boundary. It is also apparent that an increase in salinity is beneficial for decreasing the stress sensitivity of a reservoir under alkaline conditions, but this effect gradually decreases with an increase in the pH. Salinity has less influence on stress sensitivity under acidic conditions. In terms of pH, which is bounded by critical salinity, a lower pH is beneficial for reservoir protection in low to intermediate salinity conditions. In contrast, when the pH is higher, the reservoir is better protected. Acidic conditions involve inorganic chemical reactions, whereas alkaline conditions involve organic–inorganic reactions, and the influence of salinity on permeability sensitivity is affected by the amount of H + .https://doi.org/10.1177/0144598717740957
collection DOAJ
language English
format Article
sources DOAJ
author Boyang Wang
Yong Qin
Jian Shen
Gang Wang
spellingShingle Boyang Wang
Yong Qin
Jian Shen
Gang Wang
Study on stress sensitivity of lignite reservoir under salinity and pH composite system
Energy Exploration & Exploitation
author_facet Boyang Wang
Yong Qin
Jian Shen
Gang Wang
author_sort Boyang Wang
title Study on stress sensitivity of lignite reservoir under salinity and pH composite system
title_short Study on stress sensitivity of lignite reservoir under salinity and pH composite system
title_full Study on stress sensitivity of lignite reservoir under salinity and pH composite system
title_fullStr Study on stress sensitivity of lignite reservoir under salinity and pH composite system
title_full_unstemmed Study on stress sensitivity of lignite reservoir under salinity and pH composite system
title_sort study on stress sensitivity of lignite reservoir under salinity and ph composite system
publisher SAGE Publishing
series Energy Exploration & Exploitation
issn 0144-5987
2048-4054
publishDate 2018-05-01
description The stress sensitivity of a coal reservoir is an important factor affecting the productivity of the coalbed methane well. Determining methods to reduce the stress sensitivity of coal reservoirs in the process of coalbed methane well drainage and recovery is of significance for the efficient development of coalbed methane. Based on a multiindex comprehensive evaluation of the stress sensitivity of a lignite reservoir under different pH and salinity, a permeability prediction model and productivity model of the coalbed methane well are established in consideration of the stress sensitivity under the influence of pH and salinity. Analysis is conducted on changes in permeability with effective stress and the mechanism involved in the stress-sensitive effect in a lignite reservoir under these two influencing factors. Results show that the relation between dimensionless permeability and effective stress is in good agreement with a negative exponential relationship. In addition, the relation between the stress-sensitive coefficient and effective stress can be divided into a fluctuation stage and a stabilization stage using 15–17 MPa as the boundary. It is also apparent that an increase in salinity is beneficial for decreasing the stress sensitivity of a reservoir under alkaline conditions, but this effect gradually decreases with an increase in the pH. Salinity has less influence on stress sensitivity under acidic conditions. In terms of pH, which is bounded by critical salinity, a lower pH is beneficial for reservoir protection in low to intermediate salinity conditions. In contrast, when the pH is higher, the reservoir is better protected. Acidic conditions involve inorganic chemical reactions, whereas alkaline conditions involve organic–inorganic reactions, and the influence of salinity on permeability sensitivity is affected by the amount of H + .
url https://doi.org/10.1177/0144598717740957
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AT yongqin studyonstresssensitivityoflignitereservoirundersalinityandphcompositesystem
AT jianshen studyonstresssensitivityoflignitereservoirundersalinityandphcompositesystem
AT gangwang studyonstresssensitivityoflignitereservoirundersalinityandphcompositesystem
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