The Application of Distributed Fiber-Optic Sensing Technology in Monitoring the Loose Zone in the Floor of Stoping Roadway

被引:2
|
作者
Jing, Chai [1 ,2 ]
Zhicheng, Han [1 ]
Wulin, Lei [3 ]
Dingding, Zhang [1 ,2 ]
Jianfeng, Yang [1 ,2 ]
Chenyang, Ma [1 ]
Gang, Han [4 ]
Mingyue, Weng [5 ]
机构
[1] Xian Univ Sci & technol, Coll energy Engn, Xian 710054, Peoples R China
[2] Xian Univ Sci & Technol Minist Educ, western Min & mine disaster prevent & control key, Xian 710054, Peoples R China
[3] Longdong Univ, Coll Energy Engn, Qingyang 745000, Peoples R China
[4] China Coal Energy Res Inst Co Ltd, Xian 710054, Peoples R China
[5] ZhongtianHechuang Energy Co Ltd, Ordos 017010, Peoples R China
关键词
Floor heave; Distributed optical fiber-sensing technology; Loose zone; Bulking and extrusion; COAL-MINE; HEAVE; DEFORMATION; MECHANISM;
D O I
10.1007/s00603-024-04181-1
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The bulking and extrusion of loose rocks within the floor's loose zone in stoping roadways are the primary causes of significant floor expansion and deformation. A force and deformation model for the optical fiber sensing within the loose zone of the floor has been developed to apply distributed optical fiber sensing technology for monitoring the floor's loose zone. This paper presents the characterization and calculation method of the distributed optical fiber strain curve for determining the development range, expansion displacement, and expansion stress of the roadway floor's loose zone. The extrusion coefficient (xi) quantifies the extrusion characteristics of loose rocks within the floor's loose zone. Borehole-implanted sensing optical fibers were employed to monitor the depth, expansion displacement, and expansion stress of the roadway floor's loose zone during mining operations at the 21,104 working face in Hulusu Coal Mine. The maximum development depth of the loose zone in the roadway floor of Hulusu Coal Mine is 4.23 m, with a maximum expansion displacement of 0.446 m. The expansion displacement generated by the loose zone exhibits a quadratic function relationship with its development depth. The maximum expansion stress sensed by the optical fiber is 2.4 MPa, with the expansion stress generated by the loose zone exhibiting a linear relationship with its development depth. The extrusion coefficient (xi) for the sandy mudstone floor of the 21,104 working face at Hulusu Coal Mine ranges approximately from 1.04 to 1.13. The measured values obtained from the optical fibers show good consistency with the numerical simulation results in both trends and numerical values. Distributed optical fiber-sensing technology can effectively monitor the loose zone, expansion displacement, and expansion stress of the mining roadway floor during mining operations, enabling extensive, long-distance, all-weather, and real-time monitoring of roadway surrounding rock. A model for the force and deformation of the optical cable within the loose zone of the floor has been developed.A method for characterizing and calculating the distributed optical fiber strain curve is provided for the development range, expansion displacement, and expansion stress within the loose zone of the roadway floor.An extrusion coefficient (xi) has been defined to quantitatively characterize the extrusion behavior of loose rock in the loose zone.
引用
收藏
页码:723 / 744
页数:22
相关论文
共 50 条
  • [1] Distributed Fiber-Optic Sensing and Integrity Monitoring
    Glisic, Branko
    Inaudi, Daniele
    TRANSPORTATION RESEARCH RECORD, 2010, (2150) : 96 - 102
  • [2] Review of Fiber-optic Distributed Acoustic Sensing Technology
    Zhicheng ZHONG
    Kuiyuan LIU
    Xue HAN
    Jun LIN
    Instrumentation, 2019, 6 (04) : 47 - 58
  • [3] Application of Distributed Fiber Optic Sensing Technology for Structural Safety Monitoring
    Zhang, Yisong
    Du, Rui
    Tian, Xuechao
    Fu, Chaoshuai
    Li, Ruiyan
    Tian, Chang
    AOPC 2023:OPTIC FIBER GYRO, 2023, 12968
  • [4] Railway traffic monitoring with trackside fiber-optic cable by distributed acoustic sensing Technology
    Zhang, Gongbo
    Song, Zhenghong
    Osotuyi, Abayomi Gaius
    Lin, Rongbing
    Chi, Benxin
    FRONTIERS IN EARTH SCIENCE, 2022, 10
  • [5] Multi-Mechanism Distributed Fiber-Optic Sensing Technology
    Huang Linjing
    Zhou Xiao
    Fan Xinyu
    Wang Feng
    Zhang Xuping
    He Zuyuan
    ACTA OPTICA SINICA, 2024, 44 (01)
  • [6] Multi-Mechanism Distributed Fiber-Optic Sensing Technology
    Huang, Linjing
    Zhou, Xiao
    Fan, Xinyu
    Wang, Feng
    Zhang, Xuping
    He, Zuyuan
    Guangxue Xuebao/Acta Optica Sinica, 2024, 44 (01):
  • [7] Application of distribution fiber-optic sensing technology in Submarine Optical Cable Safety Monitoring
    Hu Shan
    Zuo Mingjiu
    OPTICS FRONTIERS ONLINE 2020: DISTRIBUTED OPTICAL FIBER SENSING TECHNOLOGY AND APPLICATIONS, 2021, 11607
  • [8] Fiber-Optic Distributed Acoustic Sensing for Smart Grid Application
    Zhang, Xiaofeng
    Qi, Jun
    Liang, Xiao
    Guan, Zhen
    Liu, Zeguang
    Zhang, Chang
    Chen, Dabin
    Deng, Weifeng
    Xu, Changzhi
    Wang, Xinwei
    Liu, Huanhuan
    PHOTONICS, 2025, 12 (01)
  • [9] Computational distributed fiber-optic sensing
    Zhou, Da-Peng
    Peng, Wei
    Chen, Liang
    Bao, Xiaoyi
    OPTICS EXPRESS, 2019, 27 (12) : 17069 - 17079
  • [10] Fiber-optic distributed-temperature-sensing technology used for reservoir monitoring in an Indonesia steamflood
    Nath, D. K.
    Sugianto, Riki
    Finley, Doug
    SPE DRILLING & COMPLETION, 2007, 22 (02) : 149 - 156