Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking

Artificial freezing of water-bearing soil layers composing a sedimentary deposit can induce frost heave and water migration that affect the natural stress–strain state of the soil layers and freezing process. In the present paper, a thermo-hydro-mechanical (THM) model for freezing of water-saturated...

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Published in:Journal of Rock Mechanics and Geotechnical Engineering
Main Authors: M. Zhelnin, A. Kostina, A. Prokhorov, O. Plekhov, M. Semin, L. Levin
Format: Article
Language:English
Published: Elsevier 2022-04-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1674775521001384
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author M. Zhelnin
A. Kostina
A. Prokhorov
O. Plekhov
M. Semin
L. Levin
author_facet M. Zhelnin
A. Kostina
A. Prokhorov
O. Plekhov
M. Semin
L. Levin
author_sort M. Zhelnin
collection DOAJ
container_title Journal of Rock Mechanics and Geotechnical Engineering
description Artificial freezing of water-bearing soil layers composing a sedimentary deposit can induce frost heave and water migration that affect the natural stress–strain state of the soil layers and freezing process. In the present paper, a thermo-hydro-mechanical (THM) model for freezing of water-saturated soil is proposed to study the effects of frost heave and water migration in frozen soils on the formation of a frozen wall and subsequent excavation activity for sinking a vertical shaft. The governing equations of the model are formulated relative to porosity, temperature, and displacement which are considered as primary variables. The relationship between temperature, pore water, and ice pressure in frozen soil is established by the Clausius–Clapeyron equation, whereas the interaction between the stress–strain behavior and changes in porosity and pore pressure is described with the poromechanics theory. Moreover, constitutive relations for additional mechanical deformation are incorporated to describe volumetric expansion of soil during freezing as well as creep strain of soil in the frozen state. The ability of the proposed model to capture the frost heave of frozen soil is demonstrated by a comparison between numerical results and experimental data given by a one-sided freezing test. Also to validate the model in other freezing conditions, a radial freezing experiment is performed. After the validation procedure, the model is applied to numerical simulation of artificial freezing of silt and sand layers for shaft sinking at Petrikov potash mine in Belarus. Comparison of calculated temperature with thermal monitoring data during active freezing stage is presented. Numerical analysis of deformation of unsupported sidewall of a shaft inside the frozen wall is conducted to account for the change in natural stress–strain state of soil layers induced by artificial freezing.
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spelling doaj-art-059ba20db4504cb49232ddda351c707a2025-09-02T00:41:32ZengElsevierJournal of Rock Mechanics and Geotechnical Engineering1674-77552022-04-0114253755910.1016/j.jrmge.2021.07.015Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinkingM. Zhelnin0A. Kostina1A. Prokhorov2O. Plekhov3M. Semin4L. Levin5Institute of Continuous Media Mechanics of the Ural Branch of the Russian Academy of Sciences, Perm, 614013, Russia; Corresponding author.Institute of Continuous Media Mechanics of the Ural Branch of the Russian Academy of Sciences, Perm, 614013, RussiaInstitute of Continuous Media Mechanics of the Ural Branch of the Russian Academy of Sciences, Perm, 614013, RussiaInstitute of Continuous Media Mechanics of the Ural Branch of the Russian Academy of Sciences, Perm, 614013, RussiaMining Institute of the Ural Branch of the Russian Academy of Sciences, Perm, 614007, RussiaMining Institute of the Ural Branch of the Russian Academy of Sciences, Perm, 614007, RussiaArtificial freezing of water-bearing soil layers composing a sedimentary deposit can induce frost heave and water migration that affect the natural stress–strain state of the soil layers and freezing process. In the present paper, a thermo-hydro-mechanical (THM) model for freezing of water-saturated soil is proposed to study the effects of frost heave and water migration in frozen soils on the formation of a frozen wall and subsequent excavation activity for sinking a vertical shaft. The governing equations of the model are formulated relative to porosity, temperature, and displacement which are considered as primary variables. The relationship between temperature, pore water, and ice pressure in frozen soil is established by the Clausius–Clapeyron equation, whereas the interaction between the stress–strain behavior and changes in porosity and pore pressure is described with the poromechanics theory. Moreover, constitutive relations for additional mechanical deformation are incorporated to describe volumetric expansion of soil during freezing as well as creep strain of soil in the frozen state. The ability of the proposed model to capture the frost heave of frozen soil is demonstrated by a comparison between numerical results and experimental data given by a one-sided freezing test. Also to validate the model in other freezing conditions, a radial freezing experiment is performed. After the validation procedure, the model is applied to numerical simulation of artificial freezing of silt and sand layers for shaft sinking at Petrikov potash mine in Belarus. Comparison of calculated temperature with thermal monitoring data during active freezing stage is presented. Numerical analysis of deformation of unsupported sidewall of a shaft inside the frozen wall is conducted to account for the change in natural stress–strain state of soil layers induced by artificial freezing.http://www.sciencedirect.com/science/article/pii/S1674775521001384Artificial ground freezing (AGF)Thermo-hydro-mechanical (THM) modelingFrost effectsFrozen wallShaft sinking
spellingShingle M. Zhelnin
A. Kostina
A. Prokhorov
O. Plekhov
M. Semin
L. Levin
Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
Artificial ground freezing (AGF)
Thermo-hydro-mechanical (THM) modeling
Frost effects
Frozen wall
Shaft sinking
title Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
title_full Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
title_fullStr Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
title_full_unstemmed Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
title_short Coupled thermo-hydro-mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
title_sort coupled thermo hydro mechanical modeling of frost heave and water migration during artificial freezing of soils for mineshaft sinking
topic Artificial ground freezing (AGF)
Thermo-hydro-mechanical (THM) modeling
Frost effects
Frozen wall
Shaft sinking
url http://www.sciencedirect.com/science/article/pii/S1674775521001384
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