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Effect of adsorption-induced matrix deformation on coalbed methane transport analyzed using fractal theory

机译:分形理论分析吸附引起的基质变形对煤层气运移的影响

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It is well-known that adsorption-induced deformation of coal matrices influences the prediction of the estimated coalbed methane (CBM) yield. Additionally, changes in porosity contribute to changes in matrix permeability. In this paper, changes in porosity and absolute permeability are studied on the basis of fractal theory, and the reliability of equations are verified by experimental data from coal samples from the San Juan Basin. Furthermore, two permeability-affecting stages (i.e., rapid and slow deformation stages) are identified, and the result also illustrates that its applicability varies with different gas pressures that arise from the decay of the Klinkenberg effect when the gas pressure is increasing. However, its applicability is limited when the gas pressure remains high because of the same decay effect; therefore, using a reasonable value for the Klinkenberg constant plays a crucial role in formulating a sound permeability-change model for high pressure environments. Fractal theory can clearly explain permeability change patterns due to the adsorption-induced matrix deformation, which can be applied to understand the mechanism underlying methane seepage during CBM production. (C) 2015 Elsevier B.V. All rights reserved.
机译:众所周知,煤基质的吸附诱导变形会影响煤层气估计产量的预测。另外,孔隙率的变化有助于基质渗透率的变化。本文基于分形理论研究了孔隙度和绝对渗透率的变化,并利用来自圣胡安盆地煤样品的实验数据验证了方程的可靠性。此外,确定了两个影响渗透率的阶段(即,快速变形阶段和缓慢变形阶段),并且该结果还表明,随着气压的升高,由于克林根贝格效应的衰减而产生的气压不同,其适用性也会发生变化。但是,由于同样的衰减作用,当气压较高时,其适用性受到限制。因此,为克​​林根贝格常数使用一个合理的值对于建立高压环境下的透声变化模型起着至关重要的作用。分形理论可以清楚地解释由于吸附引起的基质变形而引起的渗透率变化模式,可用于理解煤层气生产过程中甲烷渗透的机理。 (C)2015 Elsevier B.V.保留所有权利。

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