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Shale Dual-Porosity Dual-Permeability Poromechanical and Chemical Properties Extracted from Experimental Pressure Transmission Tests

机译:Shale双孔隙度双渗透性浮子机械和化学性质从实验压力传递测试中提取

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So far, no effective methods have been found to measure shale dual-porosity dual-permeability poromechanical and chemical parameters. This paper presents a practical method to determine such parameters by matching the newly derived two-dimensional transversely isotropic dual-poro-chemo-electro-elastic analytical solutions with laboratory pressure transmission test data of a clay-rich shale. The matching provides estimations of crucial shale parameters, including dual permeabilities, membrane coefficient, ions' diffusion coefficients, and electro-osmotic permeability. Moreover, this matching includes not only pore pressure but also axial strain and radial strain. Such triple matches provide more confidence in the estimations compared to conventional simulations of only pore pressure measurements. Both the single porosity poromechanics solution and the newly derived dual-poro-chemo-electro-elastic solution are applied to analyze the test. It is shown that the single poro-chemo-electro-elastic simulation could not reproduce the experimental pore pressure or strain responses while the dual-poro-chemo-electro-elastic simulation could capture simultaneously pore pressure, axial strain, and radial strain responses very well. Compared to the single-porosity simulation, the dual-porosity simulation indicates that most of the shale volume change occurred within the clay grains and in between clay layers, pore pressure in between clay layers was higher than that outside of clay grains due to chemical osmosis. Sensitive analysis is implemented to show the confidence of the estimations and to identify parameters with the most influence on the results of the pressure transmission test. This paper also highlights the importance of accounting for shale dual-porosity nature when simulating its responses. (C) 2017 American Society of Civil Engineers.
机译:到目前为止,没有发现没有有效的方法来测量页岩双孔隙度双渗透性疣和化学参数。本文呈现了通过将新导出的二维横向各向同性双孔 - 化学电气 - 电力分析解决方案与富含粘土的页岩的实验室压力传递测试数据匹配来确定这些参数的实用方法。该匹配提供了关键页岩参数的估计,包括双渗透性,膜系数,离子的扩散系数和电渗透渗透性。此外,这种匹配不仅包括孔隙压力,还包括轴向应变和径向菌株。与仅孔隙压力测量的传统模拟相比,这种三倍匹配在估计上提供了更多的信心。施加单孔隙率波多机械溶液和新衍生的双泊罗化学 - 电弹性溶液以分析测试。结果表明,单孔化学 - 电弹性模拟不能再现实验孔隙压力或应变响应,而双泊罗化学 - 电弹性模拟可以同时捕获孔隙压力,轴向应变和径向应变响应非常好。与单孔隙率模拟相比,双孔隙率模拟表明,大多数页岩体积发生变化发生在粘土晶粒和粘土层之间,粘土层之间的孔隙压力高于粘土颗粒外部引起的粘土颗粒引起的。实施敏感性分析以展示估计的置信度,并识别对压力传动试验结果的影响最大的参数。本文还突出了在模拟其响应时核算页岩双孔隙性的重要性。 (c)2017美国土木工程师协会。

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