ScCO2−H2O−煤相互作用对深部高硫煤层孔裂隙的影响机理

Mechanistic effects of supercritical CO2-H2O-coal geochemical reaction on pore-fracture networks in deep high-sulfur coal seams

  • 摘要: 深部高硫煤具有较好的完整性和封闭性,是潜在的CO2地质封存场所,但目前缺少对深部高硫煤CO2封存的针对性研究。以三河尖煤矿非高硫煤17煤和高硫煤21煤为研究对象,通过开展ScCO2−H2O−煤地球化学反应,结合结构谱学测试、孔隙结构测试,研究了ScCO2−H2O−煤反应后煤样矿物组成、孔隙结构和裂缝网络的变化规律,探讨了ScCO2−H2O−煤相互作用对深部高硫煤层孔隙和裂缝的影响机理,分析了深部高硫煤层CO2封存的可行性。结果表明:ScCO2−H2O−煤反应过程中,碳酸盐矿物的溶解和ScCO2的萃取作用改善了孔裂隙性,表现为扩孔、增孔的正效应;煤基质膨胀、高岭石吸水膨胀、次生石膏的生成和碳酸盐岩的生成等使得孔喉变窄、孔裂隙的连通性变差,表现为缩孔、堵孔的负效应;孔隙压力变化对孔裂隙的影响存在正、负双重效应。整体而言,正效应起主导作用。反应后碳酸盐矿物溶蚀程度的差异导致了高硫煤与常规煤中孔裂隙性变化的不同,而黄铁矿的含量变化对高硫煤孔裂隙性的影响有限。研究认为,ScCO2−H2O−煤反应改善了高硫煤层的孔裂隙性,增加了高硫煤孔隙中CO2吸附点位和扩散路径,有利于CO2的注入、运移、扩散和吸附。反应初期,改善效果显著,有利于高硫煤层对CO2的封存。该研究从微观层面证实了深部高硫煤CO2封存的可行性。

     

    Abstract: Deep high-sulfur coal seams exhibit good structural integrity and favorable sealing properties, demonstrating significant potential as geological reservoirs for CO2 sequestration. However, there has been a lack of focused research on CO2 sequestration in deep high-sulfur coal. Therefore, focusing on the No.17 (conventional coal) and No.21 (high-sulfur coal) from Sanhejian Mine, through ScCO2-H2O-coal geochemical reaction, X-ray diffraction and pore structure characterization tests, to study variation in mineral composition, pore structure and fracture network, and investigate the pore-fracture evolution mechanisms in deep high-sulfur coal seams induced by the ScCO2-H2O-coal reaction and explore the feasibility of CO2 sequestration in deep high-sulfur coal seams. The results indicate that: During the process of the ScCO2-H2O-coal reaction, the dissolution of carbonate minerals and the extraction effect of ScCO2 improved the pore and fracture structure, manifested as positive effects of pore expansion and increase. While coal matrix swelling, kaolinite hydration, secondary gypsum precipitation, and CO2 mineralization products cause the pore throat constriction and reduced connectivity, manifested as negative effects of compressing and blocking the pore. However, the influence of pore pressure changes on pore and fracture has both positive and negative dual effects. Overall, the positive effect plays a dominant role. The differences of the degree of dissolution of carbonate minerals after ScCO2-H2O-coal reaction leads to the difference in the property of pore and fracture between high-sulfur coal and conventional coal seams, while the influence of the variation in content of pyrite is limited. The research suggests that the ScCO2-H2O-coal reaction improves the property of pore and fracture of high-sulfur coal seams, increases the CO2 adsorption sites and diffusion paths in the pores of high-sulfur coal, which is conducive to the injection, migration, diffusion and adsorption of CO2. In the initial phase of the reaction, the improvement effect is significant, which is conductive to CO2 sequestration in high-sulfur coal seams. This study confirmed the feasibility of CO2 sequestration in deep high-sulfur coal at the microscopic level.

     

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