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Supercritical Transition Adsorption Process of CO2 and CH4 on Heterogeneous Coal Particle Based on the Gibbs Surface
Kun Zhang1, Mengya Ma2, Shuxun Sang3
1State Key Laboratory of Digital and Intelligent Technology for Unmanned Coal Mining, Anhui University of Science & Technology, Huainan 232001, China.
Abstract:
To investigate the CO2 adsorption-sequestration potential in deep coal seams, coal samples from various coal-bearing regions in China were selected for high-pressure adsorption experiments for CO2 and CH4. These experiments utilized the gravimetric method under varying temperature conditions. A segmented adsorption phase density (ρa) fitting model was applied to analyze the trends of the absolute adsorption amount (m a). The results indicate that when CO2 and CH4 transition from gaseous to supercritical states, their adsorption mechanisms evolve from micropore filling and monolayer adsorption in mesopores to multilayer adsorption, which is divided into four distinct stages. The segmented fitting model effectively describes the micropore filling at low pressures and the multilayer adsorption in supercritical states. At low pressures, the adsorption behaviors of CO2 and CH4 are similar. However, once the supercritical state is entered, the rapid increase in CO2 density leads to markedly different adsorption behaviors compared to CH4. CO2 displays anomalously high m a values during its transition from a gas-like supercritical state to a liquid-like supercritical state. The liquid-like supercritical promotes a gradual increase in m a during the later stages of high-pressure adsorption. The m a of CO2 reaches a maximum before transitioning to a liquid-like supercritical phase.
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