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On applying an external-flow driven mass transfer boundary condition to simulate drying from a pore-network model

机译:在应用外流驱动的传质边界条件模拟孔隙网络模型中的干燥时

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摘要

A novel method to simulate drying from a pore-network model is presented. Due to the evaporative mass-flux going out from the network as well as the outside airflow, a vapor mole-concentration boundary layer forms around the network. Concentration Boundary Layer Thickness (CBLT) and consequently the mass transfer coefficient are usually assumed constant in the literature. However, CBLT varies during drying owing to the changes in the outgoing mass flux from the network. To investigate the variation in CBLT and its dependence on convective effects due to the airflow, a numerical code based on the finite volume method has been developed to simulate drying characteristics of a pore-network. Laminar, steady state and two-dimensional Navier-Stokes equations as well as the vapor mole-concentration equation with both the convective and diffusive terms are discretized and solved according to the SIMPLE algorithm. A 20 x 20 two-dimensional pore-network after including cylindrical throats with circular cross sections is considered to model slow (isothermal) evaporation. Due to the geometry of throats and the network size, the effects of liquid film, viscous and gravitational forces are not considered. Therefore the capillary effect remains the dominant force for liquid transport inside the pore network. The drying algorithm applied inside the pore-network is the same as the one proposed by Metzger et al. (2007) [14], and it is verified that the convective effects are negligible within the gas phase inside the network. The effect of air flow over the exposed surface of the network causes a sudden decrease in evaporation rate from the pore-network after a short time period. This confirms the existence of the first drying period, as addressed in previous publications (e.g. Metzger et al. [14]). Also, a unique CBLT that grows along the length of the pore-network has been obtained. It is shown that the thickness of the concentration boundary layer decreases with time everywhere along the top surface of the network; therefore the assumption of constant CBLT that is used in the literature is merely a rough estimate. The present model provides a more accurate analysis of the isothermal evaporation from the porous structures exposed to laminar external air flow.
机译:提出了一种从孔隙网络模型模拟干燥的新方法。由于蒸发的质量通量从网络以及外部气流流出,因此在网络周围形成了蒸气摩尔浓度边界层。浓度边界层厚度(CBLT)以及因此的传质系数在文献中通常被假定为恒定的。但是,由于网络中传出的质量通量的变化,干燥过程中CBLT会发生变化。为了研究气流对CBLT的变化及其对流影响的依赖性,开发了基于有限体积法的数字代码来模拟孔网的干燥特性。根据SIMPLE算法离散化并求解了层流,稳态和二维Navier-Stokes方程以及具有对流和扩散项的蒸气摩尔浓度方程。包括具有圆形横截面的圆柱形喉咙后的20 x 20二维孔网被认为是对缓慢(等温)蒸发的模型。由于喉咙的几何形状和网络大小,没有考虑液膜,粘滞力和重力的影响。因此,毛细作用仍然是孔隙网络内液体传输的主要力量。孔隙网络内部应用的干燥算法与Metzger等人提出的算法相同。 (2007)[14],并证实对流效应在网络内部的气相内可忽略不计。气流在网状结构的暴露表面上的影响会导致在短时间后从孔隙网状结构蒸发的速率突然降低。如先前的出版物所述(例如Metzger等人[14]),这证实了第一个干燥期的存在。而且,已经获得了沿着孔网络长度增长的独特CBLT。结果表明,沿网络顶面各处的浓度边界层厚度随时间减小;因此,文献中使用的恒定CBLT假设只是一个粗略的估计。本模型对暴露于层流外部气流的多孔结构的等温蒸发提供了更准确的分析。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer 》 |2013年第1期| 331-344| 共14页
  • 作者单位

    Laboratory for Flow and Transport Studies in Porous Media, Department of Mechanical Engineering, University of Wisconsin-Milwaukee, 3200 N. Cramer Street, Milwaukee,WI 53211, USA;

    Laboratory for Flow and Transport Studies in Porous Media, Department of Mechanical Engineering, University of Wisconsin-Milwaukee, 3200 N. Cramer Street, Milwaukee,WI 53211, USA;

    Laboratory for Flow and Transport Studies in Porous Media, Department of Mechanical Engineering, University of Wisconsin-Milwaukee, 3200 N. Cramer Street, Milwaukee,WI 53211, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    porous media; mass transfer; pore-network model; drying; numerical simulation; invasion-percolation;

    机译:多孔介质传质孔网络模型烘干;数值模拟入侵渗透;

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