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枯竭气藏储氢盖层密封性多尺度模拟研究

MUTISCAL SIMULATION STUDY ON THE SEALING CHARATERISTICS OF CAP ROCK FOR HYDROGEN STORAGE IN DEPLETED GAS RESERVOIRS

  • 摘要: 氢气在枯竭气藏中易通过盖层发生泄漏, 明确盖层孔喉的密封特性对地下氢气的安全存储至关重要. 本文结合分子动力学模拟和孔隙网络模拟, 构建了不同孔径的高岭石狭缝模型以及盖层的孔隙网络模型. 模拟了氢气、甲烷、乙烷和二氧化碳四种典型气体的吸附与扩散行为, 并分析了盖层孔隙中烷烃和二氧化碳的存在对氢气扩散的影响. 进一步地, 将分子模拟结果耦合至孔隙网络模型, 以评估氢气、烷烃及二氧化碳等气体通过盖层孔喉的扩散过程, 并重点考察了在甲烷和二氧化碳存在时, 氢气穿过盖层孔喉的扩散行为. 结果表明: ①氢气与高岭石壁面的吸附能较低, 导致其扩散系数相较于甲烷、乙烷和二氧化碳高出1-2个数量级, 表现出更强的渗透性. ②甲烷和二氧化碳占据孔隙表面吸附位点的行为, 在物理上和化学上均对氢气的自由扩散产生了抑制效应. ③孔喉结构影响盖层密封能力, 盖层的孔喉连通性和孔径分布的非均质性是决定其密封性能的关键. ④尽管盖层厚度对宏观渗透有影响, 但氢气穿过盖层的扩散过程呈现非线性动力学特征: 表明扩散速率随时间降低. 本研究为枯竭气藏储氢的风险评估和选址提供了重要的理论指导.

     

    Abstract: Hydrogen is prone to leaking through the cap rock in depleted gas reservoirs, making it crucial to understand the sealing characteristics of capillary throats in ensuring the safe storage of hydrogen underground. This study integrates molecular dynamics simulations and pore network modeling to construct kaolinite slit models with varying pore sizes, alongside a pore network model of the cap rock. We simulated the adsorption and diffusion behaviors of four typical gases: hydrogen, methane, ethane, and carbon dioxide, and analyzed how the presence of alkanes and carbon dioxide within the capillary pores affects hydrogen diffusion. Furthermore, we coupled molecular simulation results with the pore network model to assess the diffusion processes of hydrogen, alkanes, and carbon dioxide through the capillary throats of the cap rock, with a particular focus on the diffusion behavior of hydrogen in the presence of methane and carbon dioxide. The results indicate that:①Hydrogen exhibits a lower adsorption energy on the surfaces of kaolinite, resulting in its diffusion coefficient being 1-2 orders of magnitude higher than that of methane, ethane, and carbon dioxide, demonstrating superior permeability. ②The occupancy of adsorption sites on the pore surface by methane and carbon dioxide has both physical and chemical inhibitory effects on the free diffusion of hydrogen. ③The structure of the capillary throat significantly influences the sealing capability of the cap rock, with the connectivity and heterogeneity of pore throat distribution being critical determinants of its sealing performance. ④Although the thickness of the cap rock affects macroscopic permeability, the diffusion process of hydrogen through the cap rock exhibits nonlinear dynamic characteristics, indicating that the diffusion rate decreases over time. This research provides valuable theoretical guidance for risk assessment and site selection in hydrogen storage within depleted gas reservoirs.

     

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