Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area

The excavation of deep and large vertical shafts in karst areas can easily lead to sudden changes in the stress field of the surrounding rock and even cause disasters such as cave collapses. To investigate the influence of karst areas on the stability of deep and large vertical shaft excavation usin...

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Main Authors: Guofeng Wang, Fayi Deng, Kaifu Ren, Yougqiao Fang, Haiyan Xu
Format: Article
Language:English
Published: MDPI AG 2025-01-01
Series:Buildings
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Online Access:https://www.mdpi.com/2075-5309/15/2/287
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author Guofeng Wang
Fayi Deng
Kaifu Ren
Yougqiao Fang
Haiyan Xu
author_facet Guofeng Wang
Fayi Deng
Kaifu Ren
Yougqiao Fang
Haiyan Xu
author_sort Guofeng Wang
collection DOAJ
description The excavation of deep and large vertical shafts in karst areas can easily lead to sudden changes in the stress field of the surrounding rock and even cause disasters such as cave collapses. To investigate the influence of karst areas on the stability of deep and large vertical shaft excavation using the raise boring machine (RBM) method, based on the ventilation vertical shaft project of Zimuyan Tunnel, the influence of karst caves on the displacement and stress fields of the surrounding rock during the construction stage of the vertical shaft was analyzed using the finite element simulation method. Furthermore, the influence of the cave dimensions and the distance between the cave and the shaft on the stability of the surrounding rock was evaluated. The results indicate that the karst cave caused an increase in the radial displacement of the surrounding rock, and the radial displacements and stress in the surrounding rock increased linearly with depth. However, the radial displacement of the surrounding rock in the range of 20<i>D</i> to 21<i>D</i> (<i>D</i> is the well diameter) above the bottom of the well, and the radial stress of the surrounding rock in the range of 7<i>D</i> above and below the depth of the cave, are significantly affected by the cave. When the cavern size increased from 0 to 2.0<i>D</i>, the maximum radial displacement of the surrounding rock in each construction stage increased by 10.7, 16.6, 2.3, and 2.2 times, respectively. Moreover, when the distance between the cavern and the well was increased from 0.5<i>D</i> to 2.0<i>D</i>, the maximum radial displacements of the surrounding rock corresponding to each construction stage were reduced by 51.5%, 61.6%, 40.7%, and 18.4%, respectively. These findings can provide valuable references for the design, construction, and monitoring of deep and large vertical shafts in karst areas.
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spelling doaj-art-cb911453e2464d4e9b27241c9348be542025-01-24T13:26:29ZengMDPI AGBuildings2075-53092025-01-0115228710.3390/buildings15020287Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst AreaGuofeng Wang0Fayi Deng1Kaifu Ren2Yougqiao Fang3Haiyan Xu4Guizhou Road and Bridge Group Co., Ltd., Guiyang 550018, ChinaGuizhou Road and Bridge Group Co., Ltd., Guiyang 550018, ChinaGuizhou Road and Bridge Group Co., Ltd., Guiyang 550018, ChinaGuizhou Road and Bridge Group Co., Ltd., Guiyang 550018, ChinaSchool of Civil Engineering, Sichuan Agricultural University, Chengdu 611830, ChinaThe excavation of deep and large vertical shafts in karst areas can easily lead to sudden changes in the stress field of the surrounding rock and even cause disasters such as cave collapses. To investigate the influence of karst areas on the stability of deep and large vertical shaft excavation using the raise boring machine (RBM) method, based on the ventilation vertical shaft project of Zimuyan Tunnel, the influence of karst caves on the displacement and stress fields of the surrounding rock during the construction stage of the vertical shaft was analyzed using the finite element simulation method. Furthermore, the influence of the cave dimensions and the distance between the cave and the shaft on the stability of the surrounding rock was evaluated. The results indicate that the karst cave caused an increase in the radial displacement of the surrounding rock, and the radial displacements and stress in the surrounding rock increased linearly with depth. However, the radial displacement of the surrounding rock in the range of 20<i>D</i> to 21<i>D</i> (<i>D</i> is the well diameter) above the bottom of the well, and the radial stress of the surrounding rock in the range of 7<i>D</i> above and below the depth of the cave, are significantly affected by the cave. When the cavern size increased from 0 to 2.0<i>D</i>, the maximum radial displacement of the surrounding rock in each construction stage increased by 10.7, 16.6, 2.3, and 2.2 times, respectively. Moreover, when the distance between the cavern and the well was increased from 0.5<i>D</i> to 2.0<i>D</i>, the maximum radial displacements of the surrounding rock corresponding to each construction stage were reduced by 51.5%, 61.6%, 40.7%, and 18.4%, respectively. These findings can provide valuable references for the design, construction, and monitoring of deep and large vertical shafts in karst areas.https://www.mdpi.com/2075-5309/15/2/287finite element analysisinfluence lawkarst cavestabilityvertical shaft
spellingShingle Guofeng Wang
Fayi Deng
Kaifu Ren
Yougqiao Fang
Haiyan Xu
Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
Buildings
finite element analysis
influence law
karst cave
stability
vertical shaft
title Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
title_full Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
title_fullStr Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
title_full_unstemmed Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
title_short Finite Element Analysis of the Excavation Stability of Deep and Large Ventilation Shafts of Zimuyan Tunnel Using the Raise Boring Machine Method in a Karst Area
title_sort finite element analysis of the excavation stability of deep and large ventilation shafts of zimuyan tunnel using the raise boring machine method in a karst area
topic finite element analysis
influence law
karst cave
stability
vertical shaft
url https://www.mdpi.com/2075-5309/15/2/287
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