Validation of Bare FBG Sensors in Monitoring Compressive Rock Mass Deformation

Hongkui Gong, M. Kizil, Zhongwei Chen, S. Aminossadati
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引用次数: 3

Abstract

Geotechnical stability is a major concern for the long-term safety and integrity in underground coal mines.The major issues with the current roof stability monitoring system in underground coal mines include lackof systematic real time data recording scheme and using electrical sensing components that are notintrinsically safe in underground explosive workplace. Although an advanced system based on fibre opticsensing (FOS) technologies have increasingly drawn attention by mining industry, their applications in coalmines are still challenged by a number of factors, such as the survivability in large strain range, appropriatefibre encapsulation and installation methods and minimisation of measurement errors due to the straintransfer loss. This paper presents the results of preliminary experiment in developing fibre optic based roofstability monitoring system forunderground coal mines, including the validation of surface mounting bareFBGs in rock mass compressive test. The accuracy of the bare FBG sensors in measuring compressivestrain for rock mass are validated against the electrical strain gauges and linear variable differentialtransducer (LVDT). Using the stress-strain curve and Young’s modulus of the standard samples as areference, the experiment results show that the bare FBG and electrical strain gauges can provide accurateand reliable compressive strain measurements for material with different mechanical properties.
裸光纤光栅传感器监测岩体压缩变形的验证
岩土稳定性是煤矿井下长期安全、完整的重要问题。目前煤矿井下顶板稳定监测系统存在的主要问题是缺乏系统的实时数据记录方案和使用的电传感元件在井下爆炸性工作场所不安全。尽管基于光纤传感技术的先进系统越来越受到采矿业的重视,但其在煤矿中的应用仍然受到许多因素的挑战,如在大应变范围内的生存能力,适当的光纤封装和安装方法以及由于应变传递损失引起的测量误差最小化。本文介绍了开发基于光纤的煤矿井下顶板稳定性监测系统的初步试验结果,包括在岩体压缩试验中对地表安装裸光纤光栅的验证。通过电应变计和线性可变微分传感器(LVDT)验证了裸光纤光栅传感器测量岩体压缩应变的准确性。以标准试样的应力应变曲线和杨氏模量为参考,实验结果表明,裸光纤光栅和电应变片可以为不同力学性能的材料提供准确、可靠的压缩应变测量。
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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