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In-situ stress measurements and stress change monitoring to monitor overburden caving behaviour and hydraulic fracture pre-conditioning 被引量:6

In-situ stress measurements and stress change monitoring to monitor overburden caving behaviour and hydraulic fracture pre-conditioning
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摘要 A coal mine in New South Wales is longwall mining 300 m wide panels at a depth of 160–180 m directly below a 16–20 m thick conglomerate strata. As part of a strategy to use hydraulic fracturing to manage potential windblast and periodic caving hazards associated with these conglomerate strata,the in-situ stresses in the conglomerate were measured using ANZI strain cells and the overcoring method of stress relief. Changes in stress associated with abutment loading and placement of hydraulic fractures were also measured using ANZI strain cells installed from the surface and from underground. Overcore stress measurements have indicated that the vertical stress is the lowest principal stress so that hydraulic fractures placed ahead of mining form horizontally and so provide effective pre-conditioning to promote caving of the conglomerate strata. Monitoring of stress changes in the overburden strata during longwall retreat was undertaken at two different locations at the mine. The monitoring indicated stress changes were evident 150 m ahead of the longwall face and abutment loading reached a maximum increase of about7.5 MPa. The stresses ahead of mining change gradually with distance to the approaching longwall and in a direction consistent with the horizontal in-situ stresses. There was no evidence in the stress change monitoring results to indicate significant cyclical forward abutment loading ahead of the face. The forward abutment load determined from the stress change monitoring is consistent with the weight of overburden strata overhanging the goaf indicated by subsidence monitoring. A coal mine in New South Wales is longwall mining 300 m wide panels at a depth of 160-180 m directly below a 16-20 m thick conglomerate strata. As part of a strategy to use hydraulic fracturing to manage potential windblast and periodic caving hazards associated with these conglomerate strata, the in-situ stresses in the conglomerate were measured using ANZI strain cells and the overcoring method of stress relief. Changes in stress associated with abutment loading and placement of hydraulic fractures were also measured using ANZI strain cells installed from the surface and from underground. Overcore stress mea- surements have indicated that the vertical stress is the lowest principal stress so that hydraulic fractures placed ahead of mining form horizontally and so provide effective pre-conditioning to promote caving of the conglomerate strata. Monitoring of stress changes in the overburden strata during longwall retreat was undertaken at two different locations at the mine. The monitoring indicated stress changes were evi- dent 150 m ahead of the longwall face and abutment loading reached a maximum increase of about 7.5 MPa. The stresses ahead of mining change gradually with distance to the approaching longwall and in a direction consistent with the horizontal in-situ stresses. There was no evidence in the stress change monitoring results to indicate significant cyclical forward abutment loading ahead of the face. The for- ward abutment load determined from the stress change monitoring is consistent with the weight of over- burden strata overhanging the goaf indicated by subsidence monitoring.
出处 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2016年第1期103-110,共8页 矿业科学技术学报(英文版)
关键词 应力变化 监测结果 水力压裂 应力测量 上覆岩层 预处理 破坏行为 水平地应力 Stress measurementOverburdenHydraulic fracturing Longwall
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参考文献6

  • 1Mills KW. In situ stress measurement using the ANZI stress cell. In: Proceedings of the international symposium on rock stress. Rotterdam: A.A. Balkema: 1997. p. 7-10.
  • 2Jeffrey R, Chen Z, Mills K, Pegg S. Monitoring and measuring hydraulic fracturing growth during preconditioning of a roof rock over a coal longwall panel. In: Proceedings of the international conference for effective and sustainable hydraulic fracturing, Brisbane; 2013. p. 1-15.
  • 3Mills KW, Selmo D, Todd JB, Puller JW, Nemcik JA, Simonovski ZP. Experience of 30 years of measuring in situ stresses and monitoring stress changes with the ANZI strain cell. ACG deep mining stress measurement workshop; 2012.
  • 4Mills KW, Blacka BC, Jeffrey RG, Salisbury O. Temperature monitoring of hydraulic fractures used for preconditioning massive conglomerate strata to reduce windblast. In: Proceedings of third australasian ground control in mining; 2014. p. 189-94.
  • 5Mills KW, Jeffrey RC. Remote high resolution stress change monitoring of hydraulic fractures. In: Proceedings of the mass rain 2004 symposium, Santiago: 2004. p. 22-5.
  • 6Mills KW. A method of determining longwall abutment load distributions for roadway and pillar design. Geol Hazard - Impact Mining 2001:183-96.

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