Integrated Interpretation of the Results of Long-Term Geotechnical Monitoring in Underground Tunnels Using the Electromagnetic Radiation Method

K. Romanevich, M. Lebedev, S. Andrianov, Sergey N. Mulev
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引用次数: 3

Abstract

Electromagnetic radiation (EMR) technology makes it possible to evaluate changes in the stress-strain state (SSS) in the “tunnel lining-enclosing rock mass” system at a high level of interference, and to create schemes of long-term EMR control in tunnels (geotechnical monitoring systems). The issues of the variations in EMR signals are extremely important for monitoring systems: based on anomalous deviations from the normal regime one can draw conclusions about changes in the SSS, leading to geodynamic phenomena (e.g., rock bursts). This article presents data obtained during laboratory studies on samples and field studies in transport tunnels. Also, some results of long-term geotechnical monitoring by a set of methods is presented: EMR and tensometry of the tunnel lining, both methods are in the automatic mode. The ability of an EMR control system to respond to earthquakes affecting tunnel structures is shown. An analysis of long-term EMR studies was conducted, which showed the periodic oscillation of the “tunnel lining-enclosing rock mass” system. In a stable compressed state, minima of EMR pulses are recorded; when the rock mass and lining material are stretched, charges are separated on the edges of micro-defects and EMR increases; complete separation of the edges of micro-defects leads to the termination of intense EMR. The same occurs in the opposite direction during the compression of micro-defects and micro-fractures in the rock mass and concrete lining. The periods of compression and expansion are closely related to temperature fluctuations. The results differ in detail and, therefore, in to be more confident, additional studies are needed in various host rock massifs and types of tunnel lining.
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电磁辐射法对地下隧道长期岩土监测结果的综合解释
电磁辐射(EMR)技术可以在高干扰水平下评估“隧道衬砌-围岩”系统的应力-应变状态变化,并制定隧道(岩土监测系统)长期电磁辐射控制方案。EMR信号变化的问题对监测系统极为重要:根据与正常状态的异常偏差,可以得出SSS变化的结论,从而导致地球动力学现象(例如,岩爆)。本文介绍了在对样品进行实验室研究和对运输隧道进行实地研究时获得的数据。此外,还介绍了一套长期岩土工程监测方法的一些结果:隧道衬砌的EMR和张力测量方法均处于自动模式。研究了EMR控制系统对影响隧道结构的地震的响应能力。通过对长期EMR研究的分析,发现“衬砌-围岩”系统存在周期性振荡。在稳定压缩状态下,记录EMR脉冲的最小值;当岩体和衬砌材料受到拉伸时,电荷在微缺陷边缘分离,EMR增大;微缺陷边缘的完全分离导致强EMR的终止。在岩体和混凝土衬砌的微缺陷和微裂缝的压缩过程中,同样的情况发生在相反的方向上。压缩和膨胀的周期与温度波动密切相关。结果在细节上有所不同,因此,为了更有信心,需要对不同的寄主岩体和隧道衬砌类型进行额外的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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