FBG and BOTDA Based Monitoring of Mine Pressure Under Remaining Coal Pillars Using Physical Modeling.

IF 3.4 3区 综合性期刊 Q2 CHEMISTRY, ANALYTICAL
Sensors Pub Date : 2024-10-31 DOI:10.3390/s24217037
Dingding Zhang, Zhi Li, Yanyan Duan, Long Yang, Hongrui Liu
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Abstract

Strong mine pressure often emerges when the working face of the lower coal seam in a closely spaced coal seam system passes through the remaining coal pillar in the overlying goaf. This study investigates the law of overburden movement and the manifestation of mine pressure during mining under the remaining coal pillar. A physical model measuring 2.5 × 0.2 × 1.503 m is constructed. Fiber Bragg grating sensing technology (FBG) and Brillouin optical time domain analysis technology (BOTDA) are employed in the physical model experiment to monitor the internal strain of the overlying rock as the working face advances. This study determines the laws of overlying rock fracture and working face pressure while mining coal seams beneath the remaining coal pillar. It analyzes the relationship between the pressure at the working face and the strain characteristics of the horizontally distributed optical fiber. A fiber grating characterization method is established for the stress evolution law of overlying rock while passing the remaining coal pillar. The experimental results indicated that the fracture angle of overlying rock gradually decreases during the mining stage through and after the coal pillar. In the mining stage through the coal pillar, the cycle pressure step distance of the working face is reduced by 33.3% compared to the stage after mining through the coal pillar. Initially, the strain pattern of the horizontal optical fiber is unimodal when pressure is first applied to the working face, and it transitions from unimodal to bimodal during periodic pressure. The peak value of fiber Bragg grating compressive strain and the range of influence of advanced support pressure are 3.6 times and 4.8 times, respectively, before passing through the remaining coal pillar. Finally, the accuracy of the FBG characterization method is verified by comparing it to the monitoring curve of the coal seam floor pressure sensor. The research results contribute to applying fiber optic sensing technology in mining physical model experiments.

利用物理建模,基于 FBG 和 BOTDA 监测剩余煤柱下的矿压。
当密布煤层系统中下煤层的工作面穿过上覆煤层的剩余煤柱时,往往会产生强大的矿压。本研究探讨了在剩余煤柱下开采时覆盖层的运动规律和矿压的表现形式。构建了一个尺寸为 2.5 × 0.2 × 1.503 m 的物理模型。在物理模型实验中采用了光纤布拉格光栅传感技术(FBG)和布里渊光学时域分析技术(BOTDA),以监测工作面推进过程中上覆层岩石的内部应变。该研究确定了在剩余煤柱下开采煤层时,上覆岩石断裂和工作面压力的规律。研究分析了工作面压力与水平分布光纤应变特性之间的关系。建立了通过剩余煤柱时上覆岩石应力演变规律的光纤光栅表征方法。实验结果表明,在穿过煤柱和煤柱后的开采阶段,上覆岩石的断裂角逐渐减小。在穿过煤柱的开采阶段,工作面的循环压力步距比穿过煤柱后的开采阶段减少了 33.3%。工作面初次受压时,水平光纤的应变模式为单峰模式,周期受压时由单峰模式过渡到双峰模式。在通过剩余煤柱之前,光纤布拉格光栅压缩应变的峰值和超前支护压力的影响范围分别为 3.6 倍和 4.8 倍。最后,通过与煤层底板压力传感器监测曲线的对比,验证了光纤布拉格光栅表征方法的准确性。研究成果有助于将光纤传感技术应用于采矿物理模型实验。
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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来源期刊
Sensors
Sensors 工程技术-电化学
CiteScore
7.30
自引率
12.80%
发文量
8430
审稿时长
1.7 months
期刊介绍: Sensors (ISSN 1424-8220) provides an advanced forum for the science and technology of sensors and biosensors. It publishes reviews (including comprehensive reviews on the complete sensors products), regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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