Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite

Quantitative characterization of the change in the cleat and pore structures and fractal dimensions in anthracite after electrochemical modification is crucial for better understanding of the modification effect. Thus, lump anthracite samples were electrochemically modified in our manufactured devic...

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Main Authors: Guo, J., Zhang, X., Lu, Chunsheng, Chai, Z., Kang, G., Zhao, G., Kang, T., Zhang, S., Li, H.
Format: Journal Article
Language:English
Published: 2021
Online Access:http://hdl.handle.net/20.500.11937/88299
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author Guo, J.
Zhang, X.
Lu, Chunsheng
Chai, Z.
Kang, G.
Zhao, G.
Kang, T.
Zhang, S.
Li, H.
author_facet Guo, J.
Zhang, X.
Lu, Chunsheng
Chai, Z.
Kang, G.
Zhao, G.
Kang, T.
Zhang, S.
Li, H.
author_sort Guo, J.
building Curtin Institutional Repository
collection Online Access
description Quantitative characterization of the change in the cleat and pore structures and fractal dimensions in anthracite after electrochemical modification is crucial for better understanding of the modification effect. Thus, lump anthracite samples were electrochemically modified in our manufactured device with 0, 0.5, 1, and 2 V/cm potential gradients. The changes in heterogeneity and porosity after modification were tested and analyzed by mercury intrusion porosimetry (MIP) and fractal theory. The results indicated that the total volume of the pores increased after electrochemical treatment and continuously increased with increasing potential gradient during the treatment process. After modification, the number of pores or fractures with a pore size between 6 and 20 μm in coal after modification increases significantly. According to the intrusion pressure, three stages were defined as lower (PM < 0.1 MPa), intermediate (0.1 ≤ PM < 10 MPa), and higher regions (PM ≥ 10 MPa), which are characterized by fractal dimensions D1, D2, and compression stages, respectively. After modification, the fractal dimension D1 showed an increasing trend, while the fractal dimension D2 showed a decreasing trend, indicating that the fracture system became more complicated and that the pore system became more regular after electrochemical treatment. The evolution mechanism of heterogeneity and porosity and their fractal dimensions were explained by the dissolution of minerals, change in pH values, and dynamics of temperatures during the process of modification. The results obtained in this work are of important guiding significance for coalbed methane (CBM) extraction via in situ modification by electrochemical treatment.
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institution Curtin University Malaysia
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language eng
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publishDate 2021
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spelling curtin-20.500.11937-882992022-05-09T03:26:30Z Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite Guo, J. Zhang, X. Lu, Chunsheng Chai, Z. Kang, G. Zhao, G. Kang, T. Zhang, S. Li, H. Quantitative characterization of the change in the cleat and pore structures and fractal dimensions in anthracite after electrochemical modification is crucial for better understanding of the modification effect. Thus, lump anthracite samples were electrochemically modified in our manufactured device with 0, 0.5, 1, and 2 V/cm potential gradients. The changes in heterogeneity and porosity after modification were tested and analyzed by mercury intrusion porosimetry (MIP) and fractal theory. The results indicated that the total volume of the pores increased after electrochemical treatment and continuously increased with increasing potential gradient during the treatment process. After modification, the number of pores or fractures with a pore size between 6 and 20 μm in coal after modification increases significantly. According to the intrusion pressure, three stages were defined as lower (PM < 0.1 MPa), intermediate (0.1 ≤ PM < 10 MPa), and higher regions (PM ≥ 10 MPa), which are characterized by fractal dimensions D1, D2, and compression stages, respectively. After modification, the fractal dimension D1 showed an increasing trend, while the fractal dimension D2 showed a decreasing trend, indicating that the fracture system became more complicated and that the pore system became more regular after electrochemical treatment. The evolution mechanism of heterogeneity and porosity and their fractal dimensions were explained by the dissolution of minerals, change in pH values, and dynamics of temperatures during the process of modification. The results obtained in this work are of important guiding significance for coalbed methane (CBM) extraction via in situ modification by electrochemical treatment. 2021 Journal Article http://hdl.handle.net/20.500.11937/88299 10.1021/acsomega.1c07286 eng http://creativecommons.org/licenses/by-nc-nd/4.0/ fulltext
spellingShingle Guo, J.
Zhang, X.
Lu, Chunsheng
Chai, Z.
Kang, G.
Zhao, G.
Kang, T.
Zhang, S.
Li, H.
Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title_full Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title_fullStr Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title_full_unstemmed Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title_short Characterization of Pore Structures with Mercury Intrusion Porosimetry after Electrochemical Modification: A Case Study of Jincheng Anthracite
title_sort characterization of pore structures with mercury intrusion porosimetry after electrochemical modification: a case study of jincheng anthracite
url http://hdl.handle.net/20.500.11937/88299