The fracture mechanism and acoustic emission analysis of hard roof: a physical modeling study

被引:0
作者
Nan Li
Enyuan Wang
Maochen Ge
Jie Liu
机构
[1] China University of Mining and Technology,School of Safety Engineering
[2] China University of Mining and Technology,State Key Laboratory of Coal Resources and Safe Mining
[3] China University of Mining and Technology,Key Laboratory of Gas and Fire Control for Coal Mines
[4] Missouri University of Science and Technology,Mining Engineering Department
来源
Arabian Journal of Geosciences | 2015年 / 8卷
关键词
Physical modeling test; Hard roof; Fracture mechanism; Acoustic emission;
D O I
暂无
中图分类号
学科分类号
摘要
Roof fracture has been a persistent threat to coal mine safety. In this paper, a physical modeling system was established to explore the fracture mechanism of the hard roof. The characteristics of acoustic emission (AE) signals during the process of hard roof failure were also studied. Results indicate that shear failure first occurs in the two ends of the hard roof beam due to the comprehensive effect of ground stress and mining-induced stress. After this failure occurs, the bending moment moves quickly toward the middle of the beam. This movement will cause tensile failure in the middle part of the beam. Broadband frequency signals are produced when a hard roof is fractured. When compared with AE energy, the AE count shows an increasing trend during a short period before each hard roof fracture. AE signals, especially for AE energy, increase steeply, reaching a peak value at the moment rock fracture occurs. These signals then drop rapidly, ending with a weak level until the next turn. Both the periodic characteristics and evolution process of AE signals can reflect not only the stress state but also the damage degree of the roof strata. These results could offer some thoughts and reference for forecasting and monitoring rock bursts caused by hard roof failure.
引用
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页码:1895 / 1902
页数:7
相关论文
共 96 条
[1]  
Brady B(1977)Seismicity anomaly prior to a moderate rock burst: a case study Int J Rock Mech and Min Sci Geomech Abstr 14 127-132
[2]  
Leighton F(2008)Analysis of focal mechanism caused by rupture of stope roof Chin J Rock Mech Eng 27 3833-3840
[3]  
Cao A(2009)Prevention and forecasting of rock burst hazards in coal mines Min Sci Technol 19 0585-0591
[4]  
Dou L(2014)Selection of a suitable method for the assessment of excavation damage zone using fuzzy AHP in Aba Saleh Almahdi tunnel, Iran Arab J Geosci 6 1407-1416
[5]  
Dou L(2013)Studying the stress redistribution around the longwall mining panel using passive seismic velocity tomography and geostatistical estimation Arab J Geosci 23 1810-1818
[6]  
Lu C(2004)Deformation rules and acoustic emission characteristics of rocks in process of fatigue failure Chin J Rock Mech Eng 49 1511-1516
[7]  
Mu Z(2006)A study on microseismic monitoring of rock burst in coal mine Chin J Geophys 23 213-219
[8]  
Fattahi H(2012)Damage evolution law of coal-rock under uniaxial compression based on the electromagnetic radiation characteristics Int J Min Sci Technol 23 2499-2503
[9]  
Farsangi M(2004)Studies on acoustic emission characteristics of uniaxial compressive rock failure Chin J Rock Mech Eng 35 1009-1103
[10]  
Shojaee S(2010)Experiment on acoustic emission of rock damage and fracture under cyclic loading and multi-stage loading J China Coal Soc 23 201-204