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A fast and reliable methodology to evaluate maximum CO_2 storage capacity of depleted coal seams: A case study

机译:一种快速可靠的方法,以评估耗尽煤层的最大CO_2存储容量:案例研究

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Evaluating CO2 storage capacity of formation before implementing CO2 injection is of great importance for CO2 geological storage. Coal seams are promising CO2 geological storage sites due to their high surface area and wide geographical spread. In this study, a fast and reliable methodology is proposed to assess the CO2 storage capacity of coal seams. The methodology provides a model considering gas flow within multiple radial hydraulic fractures (MRHF) connected to depleted well, gas transport in natural fractures, diffusion in coal seam matrix, and adsorption onto matrix surface. Using Stehfest numerical inversion technology and Gauss elimination method, the semi-analytical solution for bottom-hole pressure (BHP) is obtained based on the derived continuous line-source function in coal seams. Following that, a case study regarding the CO2 storage capacity of a coal seam in Wyoming is conducted, which shows that CO2 storage capacity in the coal seam reaches 4.8 x 108 m(3). In addition, the sensitive analyses of the reservoir and engineering parameters on CO2 storage capacity are also investigated. The findings confirm that, on the one hand, higher constrained injection pressure (CIP) results in larger CO2 storage capacity. On the other hand, among these key parameters, hydraulic fracture length exhibits the most apparent effects on CO2 storage capacity whereas the impacts of skin factor and stress sensitivity are insignificant. To be more specific, CO2 storage capacity increases almost 7.5 times when the hydraulic fracture length increases 3 times when CIP = 3.5 MPa whereas CO2 storage capacity slightly increases by approximately 4.5% from permeability modulus = 0.0125 to 0.05 for the identical CIP. The methodology provided in this study lays the foundation of highly efficient CO2 geological sequestration in coal seams. (C) 2021 Elsevier Ltd. All rights reserved.
机译:在实施二氧化碳注射之前,评估组的CO2储存能力对于CO2地质储存非常重要。由于其高表面积和广大地理蔓延,煤层是有前途的二氧化碳地质储存网站。在本研究中,提出了一种快速可靠的方法来评估煤层的二氧化碳储存能力。该方法提供了考虑到多个径向液压裂缝(MRHF)内的气流的模型,其在耗尽井,天然裂缝中的气体输送,煤层基质中的扩散,并吸附到基质表面上。利用施泰斯数值反演技术和高斯消除方法,基于煤层中的导出的连续线源功能获得了用于底孔压力(BHP)的半分析解。在此之后,进行了关于煤层中的煤层的CO2储存能力的案例研究,表明煤层中的CO2储存能力达到4.8×108米(3)。此外,还研究了储层和工程参数的敏感性分析,对二氧化碳储存能力进行了研究。调查结果证实,一方面,较高约束的注射压力(CIP)导致较大的CO2存储容量。另一方面,在这些关键参数中,液压断裂长度对CO 2储存容量产生最明显的影响,而皮肤因子和应激敏感性的影响是微不足道的。更具体地,当CIP = 3.5MPa的液压断裂长度增加3次时,CO2储存容量增加了近7.5倍,而CO2储存容量略微增加,相同CIP的磁导率模量= 0.0125至0.05升高约4.5%。本研究中提供的方法为煤层中的高效CO2地质隔离奠定了基础。 (c)2021 elestvier有限公司保留所有权利。

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