Tunnel water burst disaster management engineering based on artificial intelligence technology – taking Yonglian Tunnel in Jiangxi province as the object in China

IF 4.3 Q2 Environmental Science
Dan Li, Haowen Xu, Ting Jiang, Hong Ding, Yong Xiang
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引用次数: 1

Abstract

Due to the influence of the groundwater system, mountain rock layers, climate rainfall, and tunnel length and depth, underground tunnel (UT) is prone to water inrush (WI) disasters, thus leading to delays and obstacles in construction projects. This article takes the Yonglian Tunnel as the research objective and explores the water and mud inrush disasters that occurred from July to August 2012. The Yonglian Tunnel is a control project of the Jilian Expressway in Jiangxi Province. This article aims to study and analyze the WI disaster management of UT using artificial intelligence technology, and to deepen the understanding of its causes. It will affect the factors, hazards, and related disaster management engineering methods of the Utah WI disaster. By establishing a back propagation neural network model and a radial basis function neural network model, the risk of WI disasters in tunnels, the degree of harm caused by WI, and the ability to control them were predicted and analyzed, and the stability and error values of the models were compared.
基于人工智能技术的隧道突水灾害管理工程——以江西永联隧道为研究对象
地下隧道由于受地下水系统、山体岩层、气候降雨、隧道长度和深度等因素的影响,容易发生突水灾害,造成工程建设的延误和阻碍。本文以永联隧道为研究对象,对2012年7 - 8月发生的突水、涌泥灾害进行了研究。永连隧道是江西省吉连高速公路的控制工程。本文旨在利用人工智能技术对UT的WI灾害管理进行研究和分析,加深对其原因的认识。它将影响犹他州WI灾难的因素、危害以及相关的灾害管理工程方法。通过建立反向传播神经网络模型和径向基函数神经网络模型,对隧道WI灾害的风险、造成的危害程度和控制能力进行预测和分析,并对模型的稳定性和误差值进行比较。
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来源期刊
CiteScore
4.70
自引率
0.00%
发文量
74
审稿时长
4.5 months
期刊介绍: Journal of Water Supply: Research and Technology - Aqua publishes peer-reviewed scientific & technical, review, and practical/ operational papers dealing with research and development in water supply technology and management, including economics, training and public relations on a national and international level.
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