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采动覆岩变形分布式光纤物理模型试验研究

程刚 施斌 张平松 朱鸿鹄 许星宇

工程地质学报2017,Vol.25Issue(4):926-934,9.
工程地质学报2017,Vol.25Issue(4):926-934,9.DOI:10.13544/j.cnki.jeg.2017.04.005

采动覆岩变形分布式光纤物理模型试验研究

PHYSICAL MODEL TEST STUDY ON DEFORMATION OF OVERLYING STRATA DURING COAL MINING WITH DISTRIBUTED FIBER OPTIC DEFORMATION MONITORING

程刚 1施斌 2张平松 1朱鸿鹄 3许星宇1

作者信息

  • 1. 南京大学地球科学与工程学院 南京210023
  • 2. 华北科技学院 北京101601
  • 3. 安徽理工大学地球与环境学院 淮南232001
  • 折叠

摘要

Abstract

Deformation and failure of overlying rock strata during coal mining poses a threat to the safety of mining roadway,can cause land subsidence,and can affect the safety of the buildings on the ground surface and the geological environments.Therefore,it is of great significance to carry out real-time deformation monitoring of overlying strata during coal mining.In this paper,the deformation and failure mechanism of overlying strata in coal seam is investigated through laboratory model test.The distributed fiber optic sensing technique is used.The fiber optic cables are vertically buried in the model to form a fiber optic monitoring system for measuring distributed deformation information.The fiber optic test results are consistent with the results of conventional photogrammetry system.They reveal the deformation mechanism and evolution process of the overlying rock mass during coal mining.It is found that using empirical formula,the height of water flowing fractured zone is calculated to be about 30.6cm,which fits well with the fiber optic estimated results of 30cm.The test results show that the application of distributed fiber optic sensing technology to the model test on mining-induced damage of overlying strata is feasible and accurate,which provides a new method for relevant research in the future.

关键词

煤层采动/覆岩变形/分布式光纤感测技术/模型试验

Key words

Coal mining/Overlying strata deformation/Distributed fiber optic sensing technology/Model test

分类

矿业与冶金

引用本文复制引用

程刚,施斌,张平松,朱鸿鹄,许星宇..采动覆岩变形分布式光纤物理模型试验研究[J].工程地质学报,2017,25(4):926-934,9.

基金项目

国家自然科学基金重点项目(41230636),国家重大科研仪器研制项目(41427801),国家自然科学基金面上项目(41672277)资助. (41230636)

工程地质学报

OA北大核心CSCDCSTPCD

1004-9665

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