An Optimization Model of Tunnel Support Parameters

An optimization model was developed to obtain the ideal values of the primary support parameters of tunnels, which are wide-ranging in high-speed railway design codes when the surrounding rocks are at the III, IV, and V levels. First, several sets of experiments were designed and simulated using t...

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Main Authors: Su Lijuan, Liu Haiqing, Qiao Chunsheng, Zhen Ying, Hong Shenwei
Format: Article
Language:English
Published: Eastern Macedonia and Thrace Institute of Technology 2015-05-01
Series:Journal of Engineering Science and Technology Review
Subjects:
Online Access:http://www.jestr.org/downloads/Volume8Issue3/fulltext83272015.pdf
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spelling doaj-bc2e7e01548144588f9349b94a26bc132020-11-25T00:40:04ZengEastern Macedonia and Thrace Institute of TechnologyJournal of Engineering Science and Technology Review1791-23771791-23772015-05-0183201209An Optimization Model of Tunnel Support ParametersSu Lijuan0Liu Haiqing1 Qiao Chunsheng2Zhen Ying3Hong Shenwei4College of Civil Engineering and Architecture, Liaoning Technical University, Fuxin 123000, ChinaCollege of Civil Engineering and Architecture, Liaoning Technical University, Fuxin 123000, ChinaSchool of Civil Engineering, Beijing Jiao tong University, Beijing 100044, ChinaCollege of Civil Engineering and Architecture, Liaoning Technical University, Fuxin 123000, ChinaTechnology Center for AUNNR Construction Co.Ltd., D/ Nabel Porres, 109, Santander, SpainAn optimization model was developed to obtain the ideal values of the primary support parameters of tunnels, which are wide-ranging in high-speed railway design codes when the surrounding rocks are at the III, IV, and V levels. First, several sets of experiments were designed and simulated using the FLAC3D software under an orthogonal experimental design. Six factors, namely, level of surrounding rock, buried depth of tunnel, lateral pressure coefficient, anchor spacing, anchor length, and shotcrete thickness, were considered. Second, a regression equation was generated by conducting a multiple linear regression analysis following the analysis of the simulation results. Finally, the optimization model of support parameters was obtained by solving the regression equation using the least squares method. In practical projects, the optimized values of support parameters could be obtained by integrating known parameters into the proposed model. In this work, the proposed model was verified on the basis of the Liuyang River Tunnel Project. Results show that the optimization model significantly reduces related costs. The proposed model can also be used as a reliable reference for other high-speed railway tunnels.http://www.jestr.org/downloads/Volume8Issue3/fulltext83272015.pdfhigh-speed railway; rock stability; optimization model; support parameters ______________________
collection DOAJ
language English
format Article
sources DOAJ
author Su Lijuan
Liu Haiqing
Qiao Chunsheng
Zhen Ying
Hong Shenwei
spellingShingle Su Lijuan
Liu Haiqing
Qiao Chunsheng
Zhen Ying
Hong Shenwei
An Optimization Model of Tunnel Support Parameters
Journal of Engineering Science and Technology Review
high-speed railway; rock stability; optimization model; support parameters ______________________
author_facet Su Lijuan
Liu Haiqing
Qiao Chunsheng
Zhen Ying
Hong Shenwei
author_sort Su Lijuan
title An Optimization Model of Tunnel Support Parameters
title_short An Optimization Model of Tunnel Support Parameters
title_full An Optimization Model of Tunnel Support Parameters
title_fullStr An Optimization Model of Tunnel Support Parameters
title_full_unstemmed An Optimization Model of Tunnel Support Parameters
title_sort optimization model of tunnel support parameters
publisher Eastern Macedonia and Thrace Institute of Technology
series Journal of Engineering Science and Technology Review
issn 1791-2377
1791-2377
publishDate 2015-05-01
description An optimization model was developed to obtain the ideal values of the primary support parameters of tunnels, which are wide-ranging in high-speed railway design codes when the surrounding rocks are at the III, IV, and V levels. First, several sets of experiments were designed and simulated using the FLAC3D software under an orthogonal experimental design. Six factors, namely, level of surrounding rock, buried depth of tunnel, lateral pressure coefficient, anchor spacing, anchor length, and shotcrete thickness, were considered. Second, a regression equation was generated by conducting a multiple linear regression analysis following the analysis of the simulation results. Finally, the optimization model of support parameters was obtained by solving the regression equation using the least squares method. In practical projects, the optimized values of support parameters could be obtained by integrating known parameters into the proposed model. In this work, the proposed model was verified on the basis of the Liuyang River Tunnel Project. Results show that the optimization model significantly reduces related costs. The proposed model can also be used as a reliable reference for other high-speed railway tunnels.
topic high-speed railway; rock stability; optimization model; support parameters ______________________
url http://www.jestr.org/downloads/Volume8Issue3/fulltext83272015.pdf
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