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首页> 外文期刊>Transport in Porous Media >Pore space microstructure transitions in porous media under compaction
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Pore space microstructure transitions in porous media under compaction

机译:压实下多孔介质中孔隙空间的微观结构转变

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摘要

Pore space microstructure transitions in porous media are investigated by means of simulations of pore networks subject to a random compaction mechanism. With critical path analysis we track the characteristic pore length of the media. This pore length becomes singular at transition porosities, exhibiting kinks and even discontinuities if compaction is strong. The transitions arise from the appearance of new modes in the pore size distribution. Different modes control the transport properties in different porosity intervals where the characteristic pore length is continuous. These continuous pieces of pore length correspond to structurally different media. A transition occurs when the pore fraction controlling flow equals the critical percolation probability of the underlying lattice representing the pore space. To prove the validity of the transitions discovered by simulation we develop an analytical description of the pore-size distribution of media under compaction by using a detailed balance of pore populations. Analytical transition porosities agree precisely with simulations. At the first pore space microstructure transition the change in characteristic length lp exhibits a critical scaling △lp α (λ_c - λ)~υ, with v = 1 and X a compaction factor. Within this approach many aspects of the pore space microstructure transitions observed in the simulations are explained.
机译:通过模拟受随机压实机制影响的孔网,研究了多孔介质中的孔隙空间微观结构转变。通过关键路径分析,我们可以跟踪介质的特征孔径。如果压实力强,则该孔长度在过渡孔隙处变得奇异,表现出扭结,甚至不连续。这些转变是由于出现了孔径分布新模式而引起的。不同的模式在特征孔隙长度连续的不同孔隙率区间内控制着传输特性。这些连续的孔长度片段对应于结构上不同的介质。当孔隙率控制流量等于表示孔隙空间的基础晶格的临界渗透概率时,就会发生过渡。为了证明通过模拟发现的转变的有效性,我们通过使用孔群的详细平衡,对压实条件下介质的孔径分布进行了分析描述。分析过渡孔隙率与模拟精确吻合。在第一个孔空间微观结构转变时,特征长度lp的变化表现出临界尺度Δlpα(λ_c-λ)〜υ,其中v = 1,X为压实因子。在这种方法中,解释了模拟中观察到的孔隙空间微观结构转变的许多方面。

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