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首页> 外文期刊>Communications in Nonlinear Science and Numerical Simulation >Macroscale modeling the methanol anomalous transport in the porous pellet using the time-fractional diffusion and fractional Brownian motion: A model comparison
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Macroscale modeling the methanol anomalous transport in the porous pellet using the time-fractional diffusion and fractional Brownian motion: A model comparison

机译:使用时间-分数扩散和分数布朗运动宏观模拟多孔颗粒中甲醇的异常输送:模型比较

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摘要

In this paper, we present physically-based macroscale models for the simulation of the mass transport process through the solid porous media. The models are based on the standard diffusion, time-fractional diffusion, and the fractional Brownian motion diffusion equations respectively. For the experimental verification of the developed models, the transport process in zeolite ZSM-5 pellet was studied using the methanol as a probing agent. Treating the experimental data by the second Fick's law of diffusion demonstrated no correspondence between the methanol transport and the Fickian concept. Therefore, the models, based on the time-fractional diffusion and the fractional Brownian motion, were adopted for a description of the experimental mass transfer kinetic. Both models provided an excellent correspondence between the experimental data and the relevant asymptotic solutions. For the time-fractional diffusion model, the asymptotic analysis of the experimental data revealed the equivalence of the anomalous diffusion exponents measured at the short and the long times. In contrast, the anomalous diffusion exponents estimated in the frame of the fractional Brownian motion model are different for the short and the long times. These findings allowed us to speculate on the applicability of the certain anomalous diffusion model in the experimental scenario studied. The obtained conclusions are additionally supported by an analysis of the mass transfer data presented in the literature. (C) 2019 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了基于物理的宏观模型,用于模拟通过固体多孔介质的传质过程。这些模型分别基于标准扩散,时间分数扩散和分数布朗运动扩散方程。为了对开发的模型进行实验验证,使用甲醇作为探测剂,研究了ZSM-5沸石颗粒的运输过程。用第二菲克扩散定律处理实验数据表明,甲醇的迁移与菲克概念之间没有对应关系。因此,采用基于时间分数扩散和分数布朗运动的模型来描述实验传质动力学。两种模型都提供了实验数据和相关渐近解之间的极佳对应关系。对于时间分数扩散模型,实验数据的渐近分析显示了在短时间和长时间内测得的反常扩散指数的等价性。相反,分数布朗运动模型的框架中估计的异常扩散指数在短期和长期内是不同的。这些发现使我们能够推测某些异常扩散模型在所研究的实验场景中的适用性。对文献中提出的传质数据的分析还额外支持了获得的结论。 (C)2019 Elsevier B.V.保留所有权利。

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