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A model for porosity evolution during creep compaction of sandstones

机译:砂岩蠕变压实过程中孔隙度演化模型

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摘要

A coupled creep-compaction and chemical-reaction model is developed to predict the porosity evolution for quartzose sandstones as a function of strain. The model also demonstrates the relative importance of grain-contact dissolution and cementation for both uniaxial and isotropic compaction. Theoretical analysis indicates that porosity reduction during compaction of sandstones is nonlinearly related to strain. In open systems, porosity loss is also related to grain packing, stress state, and pore-fluid saturation state. Grain-contact dissolution is the dominant mechanism for porosity loss in a closed system and, with increasing compaction, cementation becomes increasingly important. Compared to uniaxial compaction, isotropic compaction leads to more porosity loss due to grain-contact dissolution, but less porosity loss due to cementation. With compaction, pore-fluid saturation state has an increasing effect on porosity loss. Higher saturation state enhances porosity loss due to cementation.
机译:建立了蠕变-压缩和化学反应的耦合模型,以预测石英砂岩的孔隙度随应变的变化。该模型还证明了颗粒接触溶解和胶结对于单轴和各向同性压实的相对重要性。理论分析表明,压实砂岩时孔隙度的减小与应变呈非线性关系。在开放系统中,孔隙度损失还与晶粒堆积,应力状态和孔隙流体饱和状态有关。颗粒接触溶解是封闭系统中孔隙度损失的主要机制,并且随着压实度的增加,胶结作用变得越来越重要。与单轴压实相比,各向同性压实由于晶粒接触溶解而导致更多的孔隙度损失,但由于胶结而导致的孔隙度损失较少。通过压实,孔隙流体的饱和状态对孔隙度损失的影响增加。较高的饱和状态会增加由于胶结作用造成的孔隙度损失。

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