BP神经网络在隧道围岩力学参数反演中的应用

文辉辉,尹健民,秦志光,谢仁红

raybet体育在线 院报 ›› 2013, Vol. 30 ›› Issue (2) : 47-51.

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raybet体育在线 院报 ›› 2013, Vol. 30 ›› Issue (2) : 47-51. DOI: 10.3969/j.issn.1001-5485.2013.02.010
岩土工程

BP神经网络在隧道围岩力学参数反演中的应用

  • 文辉辉1,尹健民2,秦志光1,谢仁红1
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Application of BP Neural Network to the Back Analysis of Mechanical Parameters of Tunnel Surrounding Rock

  • WEN Hui-hui1, YIN Jian-min2, QIN Zhi-guang1, XIE Ren-hong1
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摘要

以谷城至竹溪高速公路珠藏洞隧道施工监测为工程依托,根据现场变形监测数据的指数函数回归方程,对最终变形量进行了预测,并基于其预测值,借助BP神经网络的超强非线性映射能力,对隧道围岩力学参数(变形模量E、黏聚力C、内摩擦角φ)进行反演,以及时掌握开挖围岩类型和材料特性参数,为隧道工程施工和设计提供参数依据,从而达到安全施工和优化设计的目的,以实现隧道的信息化施工与设计。

Abstract

The aim of this research is to ensure the construction safety and optimize the design of tunnels using information technology. With the construction of Zhuzang tunnel of Gucheng-Zhuxi highway as an engineering background, we predicted the final deformation by regression equation of exponential function deduced from the field displacement measurement data. Subsequently, on the basis of the predicted deformation, we carried out back analysis on the mechanical parameters (deformation modulus E, cohesion C, internal friction angle φ) of the tunnel's surrounding rock through BP neural network which has good nonlinear mapping ability. The surrounding rock type and material parameters can be obtained in time to provide parameters for the design and construction of the tunnel. 

关键词

最终变形量 / BP神经网络 / 隧道围岩 / 力学参数 / 反演

Key words

final deformation / BP neural network / tunnel's surrounding rock / mechanical parameters / back analysis

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文辉辉,尹健民,秦志光,谢仁红. BP神经网络在隧道围岩力学参数反演中的应用[J]. raybet体育在线 院报. 2013, 30(2): 47-51 https://doi.org/10.3969/j.issn.1001-5485.2013.02.010
WEN Hui-hui, YIN Jian-min, QIN Zhi-guang, XIE Ren-hong. Application of BP Neural Network to the Back Analysis of Mechanical Parameters of Tunnel Surrounding Rock[J]. Journal of Changjiang River Scientific Research Institute. 2013, 30(2): 47-51 https://doi.org/10.3969/j.issn.1001-5485.2013.02.010
中图分类号: TU45   

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