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A study on slow evaporation of liquids in a dual-porosity porous medium using square network model

机译:基于平方网络模型的双孔隙多孔介质中液体缓慢蒸发的研究

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Slow evaporation of a liquid is studied in a two-dimensional pore square network of aspect ratio 1 with three sides insulated and one side exposed to air for drying. In this study, the external transfer resistance and liquid-film effects are ignored while the capillary effects dominate viscous and gravity forces in the hydrophilic network. The square domain is divided into two layers with distinct porosities and particle sizes such that the two layers are exposed to drying alternately. A 100 × 100 network simulation of two cases of the exposed larger-pore layer shielding the smaller-pore layer, and the exposed smaller-pore layer shielding the larger-pore layer, lead to dramatically different responses in terms of the liquid evaporation plots and saturation distributions. The former case retains moisture in the inner smaller-pore layer till the entire outer larger-pore layer is dry, and is characterized by decaying liquid evaporation plots. The latter case leads to loss of moisture in both the exposed smaller-pore layer (due to evaporation) and the inner larger-pore layer (due to capillary pumping), and is characterized by bilinear evaporation plots (with an initial faster evaporation followed by a subsequent slower one). A case study that imposes uniform porosity in the two layers but keeps particle sizes different in the two layers indicate that though the pattern of saturation distribution during evaporation may remain similar to the earlier cases, but the evaporation plots are significantly different. An experimental validation of the simulation is undertaken with the help of a smaller 12×12 network where saturation patterns and evaporation plots are replicated well by the simulation. However the presence of surface liquid films created due to surface roughness as well as the capillary-suction driven liquid redistribution may be the cause of the large mismatch in the drying time of the network.
机译:在纵横比为1的二维孔正方形网络中研究了液体的缓慢蒸发,该网络的三面绝缘且一面暴露于空气中以进行干燥。在这项研究中,外部传递阻力和液膜效应被忽略,而毛细作用则主导了亲水网络中的粘性和重力。正方形区域分成具有不同孔隙率和粒径的两层,以使这两层交替暴露于干燥中。在两种情况下,暴露的大孔层屏蔽小孔层,而暴露的小孔层屏蔽大孔层的两种情况的100×100网络模拟,导致液体蒸发图和饱和度分布。前一种情况会在内部的小孔层中保留水分,直到整个外部的大孔层变干为止,并且其特征是衰减的液体蒸发图。后一种情况导致暴露的小孔层(由于蒸发)和内部大孔层(由于毛细管泵送)两者中的水分流失,并且具有双线性蒸发图的特征(初始蒸发较快,随后蒸发较快)。随后的较慢的)。案例研究表明,在两层中施加均匀的孔隙度,但在两层中保持不同的粒径,这表明尽管蒸发过程中的饱和度分布模式可能与早期情况相似,但蒸发曲线却有很大不同。在较小的12×12网络的帮助下进行了仿真实验验证,其中饱和模式和蒸发图可以通过仿真很好地复制。但是,由于表面粗糙度以及毛细管抽吸驱动的液体重新分布而产生的表面液膜的存在,可能是网络干燥时间严重不匹配的原因。

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