Spatial fractional permeability and fractional thermal conductivity models of fractal porous medium

Author:

Chen Yanli1ORCID,Jiang Wenwen1,Zhang Xueqing1ORCID,Geng Yuanyuan1,Bai Guiqiang1ORCID

Affiliation:

1. Key Laboratory of CNC Equipment Reliability, Ministry of Education, School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130022, China

Abstract

In order to describe the seepage and heat transfer problems of non-Newtonian fluids in porous media, a spatial fractional permeability model and a fractional thermal conductivity model for a fractal porous medium are developed based on the fractional non-Newtonian constitutive equation and the fractional generalized Fourier law. It is an innovative attempt to link fractional operators to the microstructure of pore porous media. The predictive capability of the proposed permeability and thermal conductivity model is verified by comparing with experimental data and the conventional capillary model, and the effects of fractal dimension, fractional parameters, and microstructural parameters on permeability and thermal conductivity are discussed. The results are as follows: (a) These two new models have higher accuracy than the conventional capillary model and reveal the relationship between the nonlocal memory and microstructural properties of complex fluids. (b) The permeability and thermal conductivity increase with increase in the fractional parameter α and radius ratio β and decrease with the increase in the fractal dimension ( Dτ and Df) and microstructural parameters (length ratio [Formula: see text], branching angle θ, and branching level m) of the porous medium. (c) When the radius ratio is larger than a certain value, the growth rate of permeability ( β > 0.46) and thermal conductivity ( β > 0.3) increases significantly, while the branch angle has the smallest influence on permeability and thermal conductivity, which can be ignored.

Funder

Key Research and Development Program of Jilin Province

Foundation of Education Bureau of Jilin Province

Aeronautical Science Foundation of China

National Natural Science Foundation of China

Interdisciplinary integration innovation and cultivation project of Jilin university

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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