Study on the Mechanism of Gas Diffusion in Coal Particles under the Coupled Effects of Gas Pressure and Temperature.

IF 3.7 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY ACS Omega Pub Date : 2025-01-02 eCollection Date: 2025-01-14 DOI:10.1021/acsomega.4c09979
Meihua Huang, Dong Han, Yifan Wu, Gelan Zhao
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Abstract

To investigate the gas diffusion mechanism in coal particles under the coupled effects of gas pressure and temperature, a low-temperature liquid nitrogen adsorption experiment was first conducted to obtain the pore structure characteristics and pore size distribution patterns of the coal samples. Subsequently, a methane diffusion experiment was performed on coal particles with simultaneous increases in gas pressure and temperature using a unipore model to solve the diffusion coefficient. Finally, models for the diffusion coefficient of free-state methane and adsorbed-state methane were established, with their applicability discussed. The results indicate that the pore structure of the coal samples exhibits an approximately unimodal distribution, predominantly consisting of mesopores. As the gas pressure and temperature increase, the tortuosity of the coal sample pores also increases. Both the desorption volume and desorption rate of gas rise with the simultaneous increase in gas pressure and temperature, and overall, the diffusion coefficient of coal particles tends to increase under these conditions. Methane diffusion in coal particles is primarily governed by the surface diffusion of adsorbed methane, with gas pressure exerting a greater influence on surface diffusion than temperature. The findings of this study contribute to the understanding of the gas diffusion mechanism in coal and are of significant importance for improving gas extraction rates and preventing gas-related disasters.

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气压和温度耦合作用下煤颗粒中气体扩散机理的研究。
为了研究气体压力和温度耦合作用下气体在煤颗粒中的扩散机理,首先进行了低温液氮吸附实验,获得了煤样的孔隙结构特征和孔径分布规律。随后,采用单孔模型求解扩散系数,在气体压力和温度同时升高的条件下,对煤颗粒进行了甲烷扩散实验。最后,建立了自由态甲烷和吸附态甲烷的扩散系数模型,并讨论了模型的适用性。结果表明:煤样的孔隙结构呈近似单峰分布,以中孔为主;随着气体压力和温度的升高,煤样孔隙的扭曲度也随之增大。气体的解吸体积和解吸速率随着气体压力和温度的同时升高而增大,在此条件下煤颗粒的扩散系数总体呈增大的趋势。煤颗粒中甲烷的扩散主要受吸附甲烷的表面扩散控制,气体压力对表面扩散的影响大于温度。研究结果有助于认识瓦斯在煤中的扩散机理,对提高瓦斯抽采率和预防瓦斯灾害具有重要意义。
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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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