Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations

The optimization of forced ventilation in tunnel construction becomes the key problem to improve the construction environment and energy saving. The influence of main factors on the flow field is considered for orthogonal experimental design and optimization, which includes the distance between the...

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Main Authors: Bo Wu, Huihao Chen, Wei Huang
Format: Article
Language:English
Published: SAGE Publishing 2021-05-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/16878140211017613
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spelling doaj-5b38c790f5484d2eaf227f97d31981b32021-05-17T23:33:25ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402021-05-011310.1177/16878140211017613Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulationsBo Wu0Huihao Chen1Wei Huang2School of Architectural Engineering, Guangzhou City Construction College, Guangzhou, Guangdong, ChinaCollege of Civil Engineering and Architecture, Guangxi University, Nanning, Guangxi, ChinaDepartment of Engineering, Aarhus University, Aarhus, DenmarkThe optimization of forced ventilation in tunnel construction becomes the key problem to improve the construction environment and energy saving. The influence of main factors on the flow field is considered for orthogonal experimental design and optimization, which includes the distance between the air duct outlet and the tunnel face, the bench length, the bench height, and the position of the air duct. Thus, the TOPSIS theory was adopted for the optimization method and improvement, and a series of CFD simulations were applied to analyze optimal solutions. The results show that the improved TOPSIS theory with entropy weight method and analytic hierarchy process could effectively solve the optimization problem of forced ventilation in tunnel construction. Based on this optimization principle, a case was analyzed, and the optimized ventilation parameters are obtained to improve ventilation efficiency and save energy. In the optimization scheme, the flow field in the tunnel is stable and the wind is strong enough to ventilate. Besides, there is none huge vortex, which might disrupt the stable flow field and reduce energy efficiency. It could improve the ventilation efficiency and stability, save time and cost, and bring considerable economic and social benefits to the tunnel construction.https://doi.org/10.1177/16878140211017613
collection DOAJ
language English
format Article
sources DOAJ
author Bo Wu
Huihao Chen
Wei Huang
spellingShingle Bo Wu
Huihao Chen
Wei Huang
Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
Advances in Mechanical Engineering
author_facet Bo Wu
Huihao Chen
Wei Huang
author_sort Bo Wu
title Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
title_short Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
title_full Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
title_fullStr Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
title_full_unstemmed Optimization principle and application of forced ventilation in railway tunnels based on improved TOPSIS theory and CFD simulations
title_sort optimization principle and application of forced ventilation in railway tunnels based on improved topsis theory and cfd simulations
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2021-05-01
description The optimization of forced ventilation in tunnel construction becomes the key problem to improve the construction environment and energy saving. The influence of main factors on the flow field is considered for orthogonal experimental design and optimization, which includes the distance between the air duct outlet and the tunnel face, the bench length, the bench height, and the position of the air duct. Thus, the TOPSIS theory was adopted for the optimization method and improvement, and a series of CFD simulations were applied to analyze optimal solutions. The results show that the improved TOPSIS theory with entropy weight method and analytic hierarchy process could effectively solve the optimization problem of forced ventilation in tunnel construction. Based on this optimization principle, a case was analyzed, and the optimized ventilation parameters are obtained to improve ventilation efficiency and save energy. In the optimization scheme, the flow field in the tunnel is stable and the wind is strong enough to ventilate. Besides, there is none huge vortex, which might disrupt the stable flow field and reduce energy efficiency. It could improve the ventilation efficiency and stability, save time and cost, and bring considerable economic and social benefits to the tunnel construction.
url https://doi.org/10.1177/16878140211017613
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AT huihaochen optimizationprincipleandapplicationofforcedventilationinrailwaytunnelsbasedonimprovedtopsistheoryandcfdsimulations
AT weihuang optimizationprincipleandapplicationofforcedventilationinrailwaytunnelsbasedonimprovedtopsistheoryandcfdsimulations
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