An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media

Hysteretic pressure-sensitive permeability of nanohybrids composed of substantial nanopores is critical to characterizing fluid flow through nanoporous media. Due to the nanoscale effect (gas slippage), complex and heterogeneous pore structures of nanoporous media, the essential controls on permeabi...

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Published in:Nanomaterials
Main Authors: Gang Lei, Qinzhuo Liao, Weiqing Chen, Chunhua Lu, Xianmin Zhou
Format: Article
Language:English
Published: MDPI AG 2022-11-01
Subjects:
Online Access:https://www.mdpi.com/2079-4991/12/23/4234
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author Gang Lei
Qinzhuo Liao
Weiqing Chen
Chunhua Lu
Xianmin Zhou
author_facet Gang Lei
Qinzhuo Liao
Weiqing Chen
Chunhua Lu
Xianmin Zhou
author_sort Gang Lei
collection DOAJ
container_title Nanomaterials
description Hysteretic pressure-sensitive permeability of nanohybrids composed of substantial nanopores is critical to characterizing fluid flow through nanoporous media. Due to the nanoscale effect (gas slippage), complex and heterogeneous pore structures of nanoporous media, the essential controls on permeability hysteresis of nanohybrids are not determined. In this study, a hysteretic pressure sensitive permeability model for nitrogen flow through dry nanoporous media is proposed. The derived model takes into account the nanoscale effect and pore deformation due to effective stress. The model is validated by comparing it with the experimental data. The results show that the calculated permeability and porosity are consistent with the measured results with the maximum relative error of 6.08% and 0.5%, respectively. Moreover, the hysteretic pressure-sensitive permeability of nanohybrids is related to effective stress, gas slippage, pore microstructure parameters, grain quadrilateral angle, and the loss rate of grain quadrilateral angle. The nanoscale effect is crucial to the permeability of nanoporous media. In addition, as impacted by the comprehensive impact of multiple relevant influential parameters, permeability during the pressure unloading process is not a monotonous function but presents complicated shapes. The proposed model can explain, quantify, and predict the permeability hysteresis effect of nanoporous media reasonably well.
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spelling doaj-art-e939d753cc36450ba42e2bcae19a7e4b2025-08-19T23:21:54ZengMDPI AGNanomaterials2079-49912022-11-011223423410.3390/nano12234234An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous MediaGang Lei0Qinzhuo Liao1Weiqing Chen2Chunhua Lu3Xianmin Zhou4Faculty of Engineering, China University of Geosciences, Wuhan 430074, ChinaState Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum-Beijing, Beijing 102249, ChinaCollege of Petroleum Engineering and Geosciences, King Fahd University of Petroleum & Minerals, Dhahran 31261, Saudi ArabiaFaculty of Engineering, China University of Geosciences, Wuhan 430074, ChinaCollege of Petroleum Engineering and Geosciences, King Fahd University of Petroleum & Minerals, Dhahran 31261, Saudi ArabiaHysteretic pressure-sensitive permeability of nanohybrids composed of substantial nanopores is critical to characterizing fluid flow through nanoporous media. Due to the nanoscale effect (gas slippage), complex and heterogeneous pore structures of nanoporous media, the essential controls on permeability hysteresis of nanohybrids are not determined. In this study, a hysteretic pressure sensitive permeability model for nitrogen flow through dry nanoporous media is proposed. The derived model takes into account the nanoscale effect and pore deformation due to effective stress. The model is validated by comparing it with the experimental data. The results show that the calculated permeability and porosity are consistent with the measured results with the maximum relative error of 6.08% and 0.5%, respectively. Moreover, the hysteretic pressure-sensitive permeability of nanohybrids is related to effective stress, gas slippage, pore microstructure parameters, grain quadrilateral angle, and the loss rate of grain quadrilateral angle. The nanoscale effect is crucial to the permeability of nanoporous media. In addition, as impacted by the comprehensive impact of multiple relevant influential parameters, permeability during the pressure unloading process is not a monotonous function but presents complicated shapes. The proposed model can explain, quantify, and predict the permeability hysteresis effect of nanoporous media reasonably well.https://www.mdpi.com/2079-4991/12/23/4234nanoporous mediahysteretic pressure-sensitive permeabilityanalytical modelnanoscale effects
spellingShingle Gang Lei
Qinzhuo Liao
Weiqing Chen
Chunhua Lu
Xianmin Zhou
An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
nanoporous media
hysteretic pressure-sensitive permeability
analytical model
nanoscale effects
title An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
title_full An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
title_fullStr An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
title_full_unstemmed An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
title_short An Analytical Model for Hysteretic Pressure-Sensitive Permeability of Nanoporous Media
title_sort analytical model for hysteretic pressure sensitive permeability of nanoporous media
topic nanoporous media
hysteretic pressure-sensitive permeability
analytical model
nanoscale effects
url https://www.mdpi.com/2079-4991/12/23/4234
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