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Pore Space Connectivity and the Transport Properties of Rocks

机译:孔隙空间连通性与岩石的传输特性

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摘要

Pore connectivity is likely one of the most important factors affecting the permeability of reservoir rocks. Furthermore, connectivity effects are not restricted to materials approaching a percolation transition but can continuously and gradually occur in rocks undergoing geological processes such as mechanical and chemical diagenesis. In this study, we compiled sets of published measurements of porosity, permeability and formation factor, performed in samples of unconsolidated granular aggregates, in which connectivity does not change, and in two other materials, sintered glass beads and Fontainebleau sandstone, in which connectivity does change. We compared these data to the predictions of a Kozeny-Carman model of permeability, which does not account for variations in connectivity, and to those of Bernabe et al. (2010, 2011) model, which does [Bernabe Y, Li M, Maineult A. (2010) Permeability and pore connectivity: a new model based on network simulations, J. Geophys. Res. 115, B10203; Bernabe Y, Zamora M, Li M, Maineult A., Tang Y.B. (2011) Pore connectivity, permeability and electrical formation factor: a new model and comparison to experimental data, J. Geophys. Res. 116, B11204]. Both models agreed equally well with experimental data obtained in unconsolidated granular media. But, in the other materials, especially in the low porosity samples that had undergone the greatest amount of sintering or diagenesis, only Bernabe et al. model matched the experimental data satisfactorily. In comparison, predictions of the Kozeny-Carman model differed by orders of magnitude. The advantage of the Bernabe et al. model was its ability to account for a continuous, gradual reduction in pore connectivity during sintering or diagenesis. Although we can only speculate at this juncture about the mechanisms responsible for the connectivity reduction, we propose two possible mechanisms, likely to be active at different stages of sintering and diagenesis, and thus allowing the gradual evolution observed experimentally.
机译:孔隙连通性可能是影响储层岩石渗透性的最重要因素之一。此外,连通性的影响不仅限于接近渗流过渡的材料,还可以在经历地质过程(例如机械和化学成岩作用)的岩石中连续不断地发生。在这项研究中,我们汇编了已发表的孔隙度,渗透率和形成因数的测量结果集,这些测量结果是在疏松的颗粒状聚集体样品中进行的,其中连通性不变,而在另外两种材料中,烧结玻璃珠和枫丹白露砂岩的连通性却没有改变。更改。我们将这些数据与Kozeny-Carman渗透率模型的预测(Bernabe等人的预测)进行了比较,该模型没有考虑连通性的变化。 (2010,2011)模型[Bernabe Y,Li M,Maineult A.(2010)渗透性和孔隙连通性:基于网络模拟的新模型,J。Geophys。 Res。 115,B10203; Bernabe Y,Zamora M,Li M,Maineult A.,Tang Y.B. (2011)孔隙连通性,渗透性和电形成因子:一种新模型并与实验数据进行比较,J。Geophys。 Res。 116,B11204]。两种模型均与在非固结颗粒介质中获得的实验数据完全吻合。但是,在其他材料中,特别是在经历了最大程度的烧结或成岩作用的低孔隙度样品中,只有Bernabe等人提出。模型与实验数据令人满意。相比之下,对Kozeny-Carman模型的预测则相差一个数量级。 Bernabe等人的优势。模型是其能够解释烧结或成岩过程中孔隙连通性连续,逐渐降低的能力。尽管我们目前只能推测造成连通性降低的机制,但我们提出了两种可能的机制,它们可能在烧结和成岩作用的不同阶段起作用,因此可以通过实验观察到逐步发展。

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