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首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Quartz Cementation in Polycrystalline Sandstone: Insights From Phase-Field Simulations
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Quartz Cementation in Polycrystalline Sandstone: Insights From Phase-Field Simulations

机译:多晶硅砂岩中的石英胶粘:相位场模拟的见解

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Present work investigates the dynamics of polycrystalline quartz cement growth in sandstone using a multiphase-field model. First, the model parameters corresponding to common reservoir temperature and pressure conditions were determined. A parameter related to growth kinetics was ascertained through undisturbed cement growth simulations to aptly capture the known faceting-dependent growth behavior of quartz. Unrestricted growth simulations for different grain sizes, number of subgrains, and their crystallographic orientations revealed that (I) the model successfully recovers the tendency of quartz cements to grow at a faster overall rate on a coarse grain as compared to finer one and (II) the impact of crystallographic orientations of individual subgrains in polycrystalline grains on cement volume increases with increasing number of subgrains. For applying the model to realistic multigrain systems, we generated digital grain packs through a systematic procedure. These packs fairly represent natural sandstone in terms of grain shapes, sizes, and depositional porosity. The simulated textures in these packs resemble natural samples in terms of crystal morphologies and pore geometries. The cement growth rate decreases with the increase in fraction of polycrystalline grains, indicating a significant role of mutual hindrance among differently oriented overgrowths originating from different subgrains. Further, the permeabilities computed using fluid-flow simulations through the progressively cemented packs suggest that monocrystalline packs are more permeable than equally porous polycrystalline ones. The computed permeabilities of the simulated microstructures are consistent with the measured permeabilities, advocating the pack generation process and cementation modeling approach.
机译:目前工作通过多相场模型调查砂岩中多晶石英水泥生长的动态。首先,确定对应于常见贮存温度和压力条件的模型参数。通过未受干扰的水泥生长模拟确定与生长动力学相关的参数,以恰当地捕获石英的已知截头依赖生长行为。不同谷物尺寸的不受限制的增长模拟,亚晶的数量,以及它们的晶体取向显示(i)模型成功地恢复了粗粒的石英水泥在粗糙的总体速率上生长的趋势,与更精细的一个和(ii)相比,粗粒随着越来越多的亚甲,多晶粒中各个亚粒细晶取向对水泥体积的影响。为了将模型应用于现实的多基体系统,我们通过系统的程序生成数字纹装。这些包装在晶粒形状,尺寸和沉积孔隙率方面相当代表自然砂岩。这些包装中的模拟纹理在晶体形态和孔隙几何形状方面类似于天然样本。水泥生长速率随着多晶粒级分的增加而降低,表明互相障碍在不同取向的过度生长中的相互障碍的显着作用。此外,通过逐渐胶结包使用流体流模拟计算的渗透性表明单晶包比同等多孔的多晶多种更渗透。模拟微结构的计算渗透率与测量的渗透率一致,倡导包装生成过程和胶结建模方法。

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