Shale anisotropic rock physics model incorporating the effect of compaction and non-plate mixtures on clay preferred orientation

GEOPHYSICS Pub Date : 2024-07-05 DOI:10.1190/geo2023-0591.1
K. Luo, Zhaoyun Zong, Xingyao Yin, L. Ji, Yaming Yang
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Abstract

Compared with other sedimentary rocks, the strong elastic anisotropy of shale is extremely prominent, which is mainly caused by the preferred orientation and platy nature of its clay minerals. Especially in seismic reservoir characterization, a suitable and correct estimation of the shale elastic anisotropy can improve the accuracy of the shale seismic inversion and prediction. Due to the long-term compaction of shale and the rearrangement of minerals, its microstructure and macrostructure are more complex, resulting in obvious anisotropic characteristics of shale. Existing methods do not incorporate the impact of non-plate particles on clay platelets, or indirectly incorporate it through empirical formulas, resulting in poor applicability and errors in the rock physics models. To reveal the main causes of the anisotropy of clay minerals, a theoretical model incorporating the effect of compaction and non-plate particles on the preferred orientation of clay platelets is developed using experimental data and electronic scanning results. Based on theoretical analysis, an orientation distribution function (ODF) based on the effect of compaction and non-plate particles is derived, which not only incorporates the influence of compaction but also further incorporates the effect of other non-plate particles such as quartz, which makes the established shale anisotropic rock physics model more reasonable and accurate. Then, an improved anisotropic shale rock physics model is proposed using the compaction and non-plate particles based ODF. The prediction results show that the presence of non-plate particles has an inhibitory effect on the preferred orientation of clay platelets, which is verified by the measured experimental data and indicates that the proposed method is reliable and effective.
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包含压实和非板块混合物对粘土优先取向影响的页岩各向异性岩石物理模型
与其他沉积岩相比,页岩的强弹性各向异性极为突出,这主要是由其粘土矿物的优先取向和板状性质造成的。特别是在地震储层特征描述中,对页岩弹性各向异性进行适当和正确的估计,可以提高页岩地震反演和预测的精度。由于页岩的长期压实和矿物的重新排列,其微观结构和宏观结构更加复杂,导致页岩具有明显的各向异性特征。现有方法没有考虑非板块颗粒对粘土板块的影响,或通过经验公式间接考虑,导致岩石物理模型适用性差、误差大。为了揭示粘土矿物各向异性的主要原因,利用实验数据和电子扫描结果,建立了一个包含压实和非板块颗粒对粘土板块优先取向影响的理论模型。在理论分析的基础上,得出了基于压实和非板块颗粒影响的取向分布函数(ODF),该函数不仅包含了压实的影响,还进一步包含了石英等其他非板块颗粒的影响,使已建立的页岩各向异性岩石物理模型更加合理和准确。然后,利用基于压实和非板块颗粒的 ODF,提出了改进的各向异性页岩岩石物理模型。预测结果表明,非板块颗粒的存在对粘土板块的优先取向有抑制作用,这一点得到了实测实验数据的验证,表明所提出的方法是可靠有效的。
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