Hydrogenand Cushion Gas Adsorption–DesorptionDynamics on Clay Minerals
Qian Zhang (49333), Mohammad Masoudi (8293608), Lingjie Sun (4914523), Lunxiang Zhang (6507791), Lei Yang (102719), Yongchen Song (1358772), Aliakbar Hassanpouryouzband (4601266)
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Transitioning toward a hydrogen (H<sub>2</sub>)-centric energy paradigm necessitates understanding the adsorption properties of clay minerals, essential constituents of reservoirs and caprocks, for efficient geological H<sub>2</sub> storage. This study examines the adsorption characteristics of H<sub>2</sub> on various clay minerals (montmorillonite, illite, chlorite, kaolinite, and sepiolite) at different temperatures and the adsorption of cushion gases (N<sub>2</sub>, CH<sub>4</sub>, and CO<sub>2</sub>) under reservoir conditions (313.15 K, up to 10 MPa). The results indicate that sepiolite demonstrates superior adsorption capacity under all tested conditions, surpassing montmorillonite by over 12 times at 313.15 K for H<sub>2</sub>. Illite, chlorite, and kaolinite exhibit negligible H<sub>2</sub> adsorption. Thermodynamic analysis reveals that H<sub>2</sub> adsorption on clay minerals is a nonspontaneous and exothermic physisorption process. H<sub>2</sub> loss due to adsorption hysteresis in montmorillonite and sepiolite is 42.19 and 3.56%, respectively. Sepiolite may exhibit more predictable and stable sorption properties under repeated pressure variations. The H<sub>2</sub> adsorption capacity of montmorillonite and sepiolite is merely 0.4 and 4.5% of that of CO<sub>2</sub>, respectively. This study provides valuable insights for selecting clay minerals and cushion gases for efficient geological H<sub>2</sub> storage and natural hydrogen exploration.
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