Hai Wang, Shengnan Chen, Peng Deng, Muming Wang, Zhengxiao Xu
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引用次数: 0
摘要
本研究利用毛岩样本的汞侵入毛细管压力(MICP)数据,研究了用于地下储存氢气(H2)的页岩毛岩的密封能力。研究探讨了毛细力对气体通过毛岩泄漏的影响,并评估了毛岩在封闭 H2 和 CO2 方面的有效性。结果表明,H2 与水/卤水之间的界面张力明显高于 CO2 与水/卤水之间的界面张力,导致 H2 的气柱高度(从 59 米到 667 米)高于 CO2(从 20 米到 500 米)。此外,研究还发现,较厚的毛岩层可显著降低气体泄漏率,与 H2 相比,CO2 的摩尔质量较大,界面张力较低,因此泄漏率较高。此外,虽然毛细管束模型估计的泄漏率较高,但考虑到小通道的屏蔽效应的孔隙网络模型预测的泄漏率较低,显示了其更准确估计的潜力。研究结果凸显了页岩毛岩作为储存 H2 和 CO2 的有效屏障的潜力,强调了毛细管力和毛岩厚度在减少气体泄漏方面的重要性。
Pore-Scale Investigation of Caprock Integrity in Underground Hydrogen Storage
This study investigates the sealing capacity of shale caprocks for underground storage of hydrogen (H2) utilizing mercury intrusion capillary pressure (MICP) data of caprock samples. The research explores the influence of capillary forces on gas leakage through caprocks and evaluates the effectiveness of caprocks in confining H2 and CO2. Results indicate that the interfacial tension between H2 and water/brine is significantly higher than that between CO2 and water/brine, leading to greater column heights for H2 (ranging from 59 to 667 meters) compared to CO2 (ranging from 20 to 500 meters). Additionally, the study reveals that thicker caprock layers significantly reduce the rate of gas leakage, with CO2 exhibiting higher mass leakage rates due to its larger molar mass and lower interfacial tension compared to H2. Furthermore, while the capillary bundle model estimates higher leakage rates, the pore network model, accounting for the shielding effect of small channels, predicts lower leakage rates, demonstrating its potential for more accurate estimations. The findings highlight the potential of shale caprocks as effective barriers for H2 and CO2 storage, emphasizing the importance of capillary forces and caprock thickness in mitigating gas leakage.