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Changes of Multiscale Surface Morphology and Pore Structure of Mudstone Associated with Supercritical CO2‑Water Exposure at Different Times
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Journal:Energy & Fuels

Abstract:CO2 enhanced coalbed methane recovery (CO2-ECBM) has been confirmed as an effective technology to improve coalbed methane (CBM) production; however, the injected CO2 and the reservoir water can react with the caprock of the coal seam, which changes its internal structure and increases the risk of CO2 leakage. To clarify the CO2−water−rock reaction process and the structural responses of the caprock, the roof mudstone samples of coal seams from Qinshui Basin were first selected to conduct the geochemical reaction experiment; then, scanning electron microscopy (SEM), N2 adsorption, and mercury intrusion porosimetry were adopted to monitor the multiscale structure alteration of the samples. The results show that the rock sample has progressively deteriorated during the CO2−water−rock reaction process, and this effect is aggravated with the increase of the reaction time. The dissolution process consists of three stages: (1) lots of isolated and shallow holes are developed; (2) holes are connected and formed to the dissolution grooves; (3) dissolution grooves are widened, and the dissolution zone is expanded until all the soluble minerals immerse into the reaction solution. The pore volume (PV) and specific surface area (SSA) of small pores are reduced, while those of large pores are increased, which can be attributed to the pore-blocking effect caused by clay mineral swelling and mineral precipitation and the pore-enlarging effect caused by mineral dissolution, respectively. Additionally, the ScCO2−water−rock reaction varies the pore structure distribution and makes the PV distribution more heterogeneous and the SSA distribution more homogeneous. The changes in the internal structure of the roof mudstone promote gas diffusion and seepage, which may increase the potential threat of CO2 leakage during the long-term CO2-ECBM process to a certain degree. This study will provide an essential basis for the investigation and evaluation of the security of CO2-ECBM in Qinshui Basin, China.

First Author:Zhou Xiaozhi

Indexed by:Journal paper

Correspondence Author:Niu Qinghe*,Sang Shuxun*

Discipline:Engineering

Document Type:J

Volume:35

Page Number:4212-4223

Translation or Not:no

Date of Publication:2021-02-17

Included Journals:SCI

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Associate professor
Supervisor of Doctorate Candidates
Supervisor of Master's Candidates

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School/Department:School of Resources and Geosciences

Administrative Position:Deputy Director of the Department

Education Level:With Certificate of Graduation for Doctorate Study

Business Address:CBM Development Laboratory in Wenchang Campus of China University of Mining and Technology

Gender:Male

Contact Information:cumtzxz@cumt.edu.cn

Degree:Doctor

Status:在岗

Academic Titles:Deputy director of Jiangsu low carbon society

Other Post:Member of Chinese Geological Society

Alma Mater:China University of Mining and Technology

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Honors and Titles:

2025中国知网高被引学者TOP1%  2025-12-31

2024-2025学年度中国矿业大学优秀学术学位硕士学位论文指导教师  2025-07-11

2024中国知网高被引学者TOP5%  2025-01-03

2023-2024学年度中国矿业大学优秀专业学位硕士学位论文指导教师  2024-07-11

中国自动化学会技术发明二等奖  2023-11-01

第十三届中国石油工程设计大赛方案设计类(采油气工程单项组)全国三等奖指导教师  2023-05-11

领跑者5000中国精品科技期刊顶尖学术论文  2022-12-29

2021年度中国地质学会地质类工程专业优秀本科毕业设计指导教师  2022-08-25

贵州省科技进步二等奖  2020-07-01

煤炭工业协会科技进步二等奖  2013-03-06

贵州省科技进步三等奖  2007-11-07

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