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Using anisotropic effective medium theories to quantify elastic properties of sandstone-shale laminated rocks

机译:利用各向异性有效介质理论量化砂岩-页岩层状岩的弹性

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摘要

We have developed a new rock-physics model based on a combination of effective medium theories to reconstruct rock fabric, and we have estimated the elastic properties of laminated hydrocarbon-bearing shales. This innovative model is based on the separate treatment of isotropic sandstone and vertical transverse isotropic (VTI) shale volumes of each layer; the model reproduces many typical properties of laminated shales, such as alignment of cracks, alignment of clay platelets, distinction between isolated and connected porosity, and presence of fractures. Moreover, the model enables the simulation of Stoneley velocity based on the estimated stiffness of the rock in addition to compressional and shear velocities commonly calculated with rock-physics models. Finally, it is a joint model that also calculates vertical and horizontal electrical resistivity while keeping a consistent microstructure for the elastic and resistivity simulations, thereby decreasing nonuniqueness of the solution. Nonuniqueness is an inherent flaw of effective medium modeling and has rarely been addressed in previous studies. Our simulations assumed VTI elastic behavior and suggested the presence of compliant horizontal pores and natural fractures. Our model was then validated by comparing computed properties against compressional and shear velocity and, when available, Stoneley velocity and resistivity logs. Our simulation method is implemented in two wells in the Haynesville Shale and in one well in the Barnett Shale, giving rise to accurate estimates of wave velocities, with errors lower than 5.9% for wells in the Haynesville Shale and 3.8% difference for the well in the Barnett Shale. Identification of suitable depth zones to drill a horizontal well or to initiate fractures is then based on the inferred elastic properties of the rocks.
机译:我们已经结合有效的介质理论开发了一种新的岩石物理学模型,以重建岩石构造,并且我们已经估算了叠层含烃页岩的弹性。该创新模型基于各层各向同性砂岩和垂直横向各向同性(VTI)页岩体积的单独处理;该模型再现了层状页岩的许多典型特性,例如裂缝的对准,粘土薄片的对准,孤立孔隙和连通孔隙之间的区别以及裂缝的存在。此外,除了岩石物理模型通常计算的压缩速度和剪切速度外,该模型还可以根据估计的岩石刚度来模拟Stoneley速度。最后,这是一个联合模型,它还可以计算垂直和水平电阻率,同时在弹性和电阻率模拟中保持一致的微观结构,从而减少溶液的不唯一性。非唯一性是有效介质建模的固有缺陷,在以前的研究中很少解决。我们的模拟假设VTI的弹性行为,并建议存在顺应的水平孔隙和天然裂缝。然后,通过将计算出的特性与压缩速度和剪切速度以及Stoneley速度和电阻率测井数据进行比较,从而验证了我们的模型。我们的模拟方法在海恩斯维尔页岩的两口井和巴内特页岩的一口井中实施,从而产生了准确的波速估计值,海恩斯维尔页岩的井的误差低于5.9%,而海恩斯维尔页岩的井的误差低于3.8%。巴内特页岩。然后,根据推断出的岩石弹性特性,确定合适的深度区域以钻出水平井或引发裂缝。

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