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Evolution Characteristics of Coal Microstructure and Permeability during the Liquid CO2-ECBM Process for Carbon Utilization

炭素利用のための液体CO2-ECBMプロセスにおける石炭微細構造と浸透率の進化特性 (AI 翻訳)

Gaoming Wei, Ziyan Wang, Li Ma, S. Eckart, Haotian Fang, Zhenbao Li, Lipeng Zou

Energy & Fuels📚 査読済 / ジャーナル2026-08-02#CCUSOrigin: CN対象セクター: energy
DOI: 10.1021/acs.energyfuels.6c03178
原典: https://doi.org/10.1021/acs.energyfuels.6c03178

🤖 gxceed AI 要約

日本語

液体CO2を用いた炭層メタン増進回収(LCO2-ECBM)における石炭の微細構造と浸透率の進化を実験・理論的に解明。LCO2の衝撃とCO2ハイドレート酸浸食により、鉱物の溶解・析出、官能基の変化、孔隙の増加が生じ、孔隙率と浸透率が最大108.96%と128.57%向上。CO2貯留とガス回収の相乗効果を示した。

English

This study experimentally and theoretically reveals the multiscale evolution of coal microstructure and permeability during liquid CO2-enhanced coalbed methane recovery (LCO2-ECBM). LCO2 impact and CO2 hydrate acid erosion cause mineral dissolution, functional group changes, and pore development, increasing porosity and permeability by up to 108.96% and 128.57%, respectively, demonstrating synergistic carbon storage and gas recovery.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本ではCCUS技術の社会実装が進められており、本研究成果は石炭層へのCO2貯留とメタン回収の効率向上に寄与する可能性がある。ただし、日本の主要な炭層は海外に比べ限定的であり、国際的なCCUSプロジェクトへの応用が期待される。

In the global GX context

Globally, CCUS is a key decarbonization lever, and this study provides mechanistic insights into CO2-enhanced coalbed methane recovery, supporting the feasibility of carbon utilization in coal basins. The findings contribute to optimizing CO2 injection strategies for enhanced gas recovery and permanent storage, relevant to global CCUS deployment.

👥 読者別の含意

🔬研究者:Provides mechanistic understanding of CO2-ECBM processes, useful for modeling and optimizing carbon storage and gas recovery.

🏢実務担当者:Offers insights for designing CO2 injection parameters in coalbed methane projects to enhance permeability and gas production.

🏛政策担当者:Supports evidence for CCUS as a viable emission reduction technology, informing policy frameworks for carbon utilization.

📄 Abstract(原文)

The utilization of liquid CO2 (LCO2) for enhanced coalbed methane recovery holds significant promise for developing unconventional natural gas and controlling gas disasters. A comprehensive revelation of the evolution characteristics of coal microstructure under LCO2 stress damage and CO2 hydrate acid erosion is essential for understanding coalbed permeability enhancement. Using experimental and theoretical methods, this study revealed the multiscale evolution of coal’s chemical components, pore structure, and permeability under LCO2 treatment. With increasing LCO2 impact pressure and CO2 hydrate acid erosion duration, coal mineral content and pore-throat channels underwent dissolution, acid leaching, transformation, and precipitation. The major coal elements─Mg, Ca, and Na─exhibited distinct migration behaviors, with migration maximum rates of 22.73%, 29.12%, and 32.58%, respectively. Their concentration variations directly reflect dissolution, precipitation, transformation, and the reprecipitation of coal mineral components. Meanwhile, the coupled effects of LCO2 impact damage and CO2 hydrate acid erosion promoted aromatic polycondensation and aliphatic/aromatic oxidation, increasing carboxyl, carbonyl, and ether groups by 48.53%, 47.36%, and 51.16%, respectively. Cleavage of aliphatic chains, ether bonds, and −OH groups exposes more −OH on coal, raising polarity and weakening the macromolecular framework. This creates numerous dissolution pores, enhances pore connectivity, and improves throat openness. Long-term low-temperature freezing, transient phase-transition stress, and chemical acid erosion induced by LCO2 irreversible fatigue damage in coal, formed abundant new pores. Changes in proportions of micropores (xAW), mesopores (xCW), macropores (xBW), and pore water variation ratios (ηi) show that adsorption pores transform into seepage pores, optimizing gas flow. Porosity (Φ) and permeability (k) increase linearly, up to 108.96% and 128.57%, respectively. These findings confirm that physical impact from LCO2 combined with chemical erosion from CO2 hydrate acidification synergistically enhances coal permeability, promoting gas extraction.

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