Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test

The coupling effect between the stress field formed by rock mass and the seepage field formed by groundwater has an important impact on the stability of underground engineering. In order to conduct the fluid-solid coupling physical model test in the laboratory, it is necessary to develop suitable an...

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Main Authors: Mingyang Ren, Xiangjie Yin, Ningjing Li, Xuyang Wu, Heng Liu
Format: Article
Language:English
Published: Wiley 2022-01-01
Series:Advances in Materials Science and Engineering
Online Access:http://dx.doi.org/10.1155/2022/2779965
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author Mingyang Ren
Xiangjie Yin
Ningjing Li
Xuyang Wu
Heng Liu
author_facet Mingyang Ren
Xiangjie Yin
Ningjing Li
Xuyang Wu
Heng Liu
author_sort Mingyang Ren
collection DOAJ
description The coupling effect between the stress field formed by rock mass and the seepage field formed by groundwater has an important impact on the stability of underground engineering. In order to conduct the fluid-solid coupling physical model test in the laboratory, it is necessary to develop suitable analogous materials. In this study, a new type of analogous material reflecting the fluid-solid coupling effect is developed with iron powder, barite powder, and quartz sand as aggregates, white cement as a cementing agent, and silicone oil as a regulator. Through a large number of orthogonal experiments, the influence laws of different material contents on the mechanical properties and permeability characteristics of analogous materials are obtained. In addition, a method for quickly determining the proportion of components in fluid-solid coupling analogous materials is also proposed. The developed analogous material is employed in the fluid-solid coupling physical model test of a deep tunnel. The variation laws of rock stress, displacement, and seepage pressure around the tunnel during construction are obtained, which verifies the feasibility of the developed analogous material.
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institution Kabale University
issn 1687-8442
language English
publishDate 2022-01-01
publisher Wiley
record_format Article
series Advances in Materials Science and Engineering
spelling doaj-art-a5dca4662ad543d4870c31d2011c34552025-02-03T06:08:42ZengWileyAdvances in Materials Science and Engineering1687-84422022-01-01202210.1155/2022/2779965Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model TestMingyang Ren0Xiangjie Yin1Ningjing Li2Xuyang Wu3Heng Liu4School of Civil and Transportation EngineeringLixia HoldingChina Petroleum Pipeline Engineering CorporationSchool of Civil and Transportation EngineeringSchool of Civil and Transportation EngineeringThe coupling effect between the stress field formed by rock mass and the seepage field formed by groundwater has an important impact on the stability of underground engineering. In order to conduct the fluid-solid coupling physical model test in the laboratory, it is necessary to develop suitable analogous materials. In this study, a new type of analogous material reflecting the fluid-solid coupling effect is developed with iron powder, barite powder, and quartz sand as aggregates, white cement as a cementing agent, and silicone oil as a regulator. Through a large number of orthogonal experiments, the influence laws of different material contents on the mechanical properties and permeability characteristics of analogous materials are obtained. In addition, a method for quickly determining the proportion of components in fluid-solid coupling analogous materials is also proposed. The developed analogous material is employed in the fluid-solid coupling physical model test of a deep tunnel. The variation laws of rock stress, displacement, and seepage pressure around the tunnel during construction are obtained, which verifies the feasibility of the developed analogous material.http://dx.doi.org/10.1155/2022/2779965
spellingShingle Mingyang Ren
Xiangjie Yin
Ningjing Li
Xuyang Wu
Heng Liu
Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
Advances in Materials Science and Engineering
title Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
title_full Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
title_fullStr Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
title_full_unstemmed Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
title_short Development and Application of Analogous Materials for Fluid-Solid Coupling Physical Model Test
title_sort development and application of analogous materials for fluid solid coupling physical model test
url http://dx.doi.org/10.1155/2022/2779965
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AT ningjingli developmentandapplicationofanalogousmaterialsforfluidsolidcouplingphysicalmodeltest
AT xuyangwu developmentandapplicationofanalogousmaterialsforfluidsolidcouplingphysicalmodeltest
AT hengliu developmentandapplicationofanalogousmaterialsforfluidsolidcouplingphysicalmodeltest