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A novel displacement back analysis method considering the displacement loss for underground rock mass engineering

机译:考虑到地下岩体群体位移损失的新型位移回分析方法

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摘要

Most back analysis methods for geotechnical engineering are based on the measured displacement. However, before the monitoring sections are assembled, the displacement-termed the displacement loss-has already been induced; this displacement is difficult to determine, and thus, it is not considered in the back analysis. In the present study, a novel displacement back analysis method considering the displacement loss is developed, that can obtain not only the reasonable mechanical parameters of rock masses but also the displacement loss. To reduce the computational cost of back analysis, a new hybrid optimization algorithm based on the Gaussian process (GP) and particle swarm optimization (PSO) is presented. The GP is used as an inexpensive fitness evaluation surrogate to predict the global optimum solution and accelerate the local search of PSO, which is employed to determine the best mechanical parameters for the model. Combined with FLAC(3D) numerical analysis, a novel back analysis method called GP-PSO-FLAC(3D) is proposed. The results of a case study demonstrate that this method can effectively predict more reasonable mechanical parameters and displacement loss using the monitored displacement. An engineering application in the auxiliary tunnel of the Jinping II hydropower station indicates that the elastic deformation of the surrounding rock increases rapidly after excavation, especially for deep tunnels, thereby resulting in a large displacement loss. The back analysis results for the main powerhouse of the Taian pumped storage power station indicate that the displacement loss also exists in engineering processes involving ordinary geostress conditions. Therefore, the displacement loss of a surrounding rock mass cannot be ignored in the stability evaluation or back analysis of underground engineering, especially for deep underground rock engineering.
机译:大多数回理工程分析方法基于测量的位移。但是,在组装监测部分之前,已经诱导了位移损失的位移;这种位移难以确定,因此,在后面分析中不考虑。在本研究中,开发了一种考虑位移损失的新型位移回分析方法,这不仅可以获得岩体的合理机械参数,而且可以获得岩体的合理力学参数。为了降低回分析的计算成本,提出了一种基于高斯过程(GP)和粒子群优化(PSO)的新的混合优化算法。 GP用作廉价的健身评估替代,以预测全局最佳解决方案并加速PSO的本地搜索,这是用于确定模型的最佳机械参数。结合FLAC(3D)数值分析,提出了一种名为GP-PSO-FLAC(3D)的新型后分析方法。案例研究的结果表明,使用监测的位移可以有效地预测更合理的机械参数和位移损失。金杨II水电站辅助隧道中的工程应用表明,在挖掘后周围岩石的弹性变形迅速增加,特别是对于深隧道,从而导致大的位移损失。泰安泵送存储电站主电力房的后分析结果表明,涉及普通地产症条件的工程过程中也存在位移损失。因此,在地下工程的稳定性评估或后退分析中,不能忽视周围岩体的位移损失,特别是对于深层地下岩石工程。

著录项

  • 来源
    《Tunnelling and underground space technology》 |2020年第1期|103141.1-103141.15|共15页
  • 作者单位

    Guilin Univ Technol Coll Civil Engn & Architecture Guangxi Key Lab Geomech & Geotech Engn Guilin 541004 Peoples R China;

    Guangxi Univ Sch Civil & Architecture Engn Key Lab Disaster Prevent & Struct Safety Minist Educ Nanning 530004 Peoples R China;

    Guilin Univ Technol Coll Civil Engn & Architecture Guangxi Key Lab Geomech & Geotech Engn Guilin 541004 Peoples R China;

    State Key Lab Geohazard Prevent & Geoenvironm Pro Chengdu 610059 Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Underground engineering; Back analysis; Displacement loss;

    机译:地下工程;回分析;排量损失;
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