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Thermodynamic Model for Fluid–Fluid Interfacial Areas in Porous Media for Arbitrary Drainage–Imbibition Sequences

机译:任意排水-吸水序列的多孔介质中流体-流体界面区域的热力学模型

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摘要

20 December 2007. Fluid–fluid interfacial areas are important in controlling the rate of mass and energy transfer between fluid phases in porous media. We developed a modified thermodynamically based model (TBM) to predict fluid–fluid interfacial areas in porous media for arbitrary drainage–imbibition sequences. The TBM explicitly distinguishes between interfacial areas associated with continuous (free) and isolated (entrapped) nonwetting fluids. The model is restricted to two-fluid systems in which (i) no significant conversion of mechanical work into heat occurs, (ii) the wetting fluid completely wets the porous medium's solid surfaces, and (iii) no changes in interfacial area due to mass transfer between phases occur. We show example calculations for two different drainage–imbibition sequences in two porous media: a highly uniform silica sand and a well-graded silt. The TBM's predictions for interfacial area associated with free nonwetting fluid are identical to those of a previously published geometry-based model (GBM); however, predictions for interfacial area associated with entrapped nonwetting fluid are consistently larger in the TBM than in the GBM. Although a comparison of model predictions with experimental data is currently only possible to a limited extent, good general agreement was found for the TBM. As required model parameters are commonly used as inputs for or tracked during multifluid-flow simulations, the modified TBM may be easily incorporated in numerical codes.
机译:2007年12月20日。流体-流体界面区域对于控制多孔介质中流体相之间的质量和能量传递速率非常重要。我们开发了改进的基于热力学的模型(TBM),以预测任意排泄-吸水序列的多孔介质中的流体-流体界面区域。 TBM明确地区分了与连续(游离)和孤立(包裹)非润湿液相关的界面区域。该模型仅限于双流体系统,其中(i)不会将机械功显着转化为热量,(ii)润湿液完全润湿了多孔介质的固体表面,并且(iii)由于质量,界面面积没有变化发生相间转移。我们显示了在两种多孔介质中的两种不同排水-吸水顺序的计算示例:高度均匀的硅砂和分级良好的淤泥。 TBM对与自由不润湿流体有关的界面区域的预测与先前发布的基于几何的模型(GBM)的预测相同。但是,TBM中与截留的非润湿性流体有关的界面面积的预测始终比GBM中的大。尽管目前只能在有限的程度上将模型预测与实验数据进行比较,但是对于TBM却发现了良好的一般共识。由于所需的模型参数通常用作多流体流仿真的输入或在多流体流仿真期间进行跟踪,因此修改后的TBM可以轻松地并入数字代码中。

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