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Regularity and coupling correlation between acoustic emission and electromagnetic radiation during rock heating process

  • Kong, Biao (Key Lab of Mine Disaster Prevention and Control, College of Mining ad Safety Engineering, Shandong University of Science and Technology) ;
  • Wang, Enyuan (Key Laboratory of Coal Methane and Fire Control, Ministry of Education, China University of Mining and Technology) ;
  • Li, Zenghua (Key Laboratory of Coal Methane and Fire Control, Ministry of Education, China University of Mining and Technology)
  • Received : 2017.05.04
  • Accepted : 2018.02.27
  • Published : 2018.08.10

Abstract

Real-time characterization of the rock thermal deformation and fracture process provides guidance for detecting and evaluating thermal stability of rocks. In this paper, time -frequency characteristics of acoustic emission (AE) and electromagnetic radiation (EMR) signals were studied by conducting experiments during rock continuous heating. The coupling correlation between AE and EMR during rock thermal deformation and failure was analyzed, and the microcosmic mechanism of AE and EMR was theoretically analyzed. During rock continuous heating process, rocks simultaneously produce significant AE and EMR signals. These AE and EMR signals are, however, not completely synchronized, with the AE signals showing obvious fluctuation and the EMR signals increasing gradually. The sliding friction between the cracks is the main mechanism of EMR during the rock thermal deformation and fracture, and the AE is produced while the thermal cracks expanding. Both the EMR and AE monitoring methods can be applied to evaluate the thermal stability of rock in underground mines, although the mechanisms by which these signals generated are different.

Keywords

References

  1. Agioutantis, Z., Kaklis, K., Mavrigiannakis, S., Verigakis, M., Vallianatos, F. and Saltas, V. (2016), "Potential of acoustic emissions from three point bending tests as rock failure precursors", J. Min. Sci. Technol., 26(1), 155-160. https://doi.org/10.1016/j.ijmst.2015.11.024
  2. Chen, L.J., Zhao, H.B., Gu, H.T. and Chen, J.T. (2005), "Study on Microstructure of Coal Roof Sandstone Under High Temperature", J. Chin. Univ. Min. Technol., 34(4), 443-446.
  3. Cheng, W., Hu, X., Xie, J. and Zhao, Y. (2017a), "An intelligent gel designed to control the spontaneous combustion of coal: Fire prevention and extinguishing properties", Fuel, 210, 826-835. https://doi.org/10.1016/j.fuel.2017.09.007
  4. Cheng, W., Hu, X., Xie, J. and Zhao, Y. (2017b), "Preparation and swelling properties of poly(acrylic acid-co-acrylamide) composite hydrogels", e-Polymers, 17(1), 95-106.
  5. Chmel, A. and Shcherbakov, I. (2015), "Microcracking in impactdamaged granites heated up to 600$^{\circ}C$", J. Geophys. Eng., 12(3), 485-492. https://doi.org/10.1088/1742-2132/12/3/485
  6. Fan, T., Zhou, G. and Wang, J. (2017), "Preparation and characterization of a wetting agglomeration based hybrid coal dust suppressant", Proc. Safety Environ. Protect., 113, 282-291.
  7. Guo, Q.L., Rong, G. and Yao, M. (2015), "Experimental study on acoustic emission behaviors and mechanical properties of thermal damaged marbles", Chin. J. Rock Mech. Eng., 34(2), 3-12.
  8. Hajpal, M. and Torok, A. (2004), "Mineralogical and colour changes of quartz sandstones by heat", Environ. Geol., 46(3-4), 311-322. https://doi.org/10.1007/s00254-004-1034-z
  9. Hang, Y., Qu, F. and Zhao, Y.S. (2006), "Acoustic emission phenomena of thermal cracking of sandstone", Chin. J. Geotech. Eng., 28(1), 73-75.
  10. He, M.C., Miao, J.L. abd Feng, J.L. (2010), "Rock burst process of limestone and its acoustic emission characteristics under truetriaxial unloading conditions", J. Rock Mech. Min. Sci., 47(2), 286-298. https://doi.org/10.1016/j.ijrmms.2009.09.003
  11. He, X.Q., Nie, B.S., Chen, W.X., Wang, E.Y., Dou, L.M., Wang, Y.H., Liu, M.J. and Mitri, H. (2012), "Research progress on electromagnetic radiation in gas-containing coal and rock fracture and its applications", Saf. Sci., 50(4), 728-735. https://doi.org/10.1016/j.ssci.2011.08.044
  12. Hu, Z.X., Hu, X.M., Cheng, W.M. and Lu, W. (2018), "Influence of synthetic conditions on the performance of melamine-phenolformaldehyde resin microcapsules", High Perform. Polym., 13, 1-10.
  13. Hu, Z.X., Hu, X.M., Cheng, W.M., Zhao, Y.Y. and Wu, M.Y. (2018b), "Performance optimization of one-component polyurethane healing agent for self-healing concrete", Construct. Build. Mater., 179, 151-159. https://doi.org/10.1016/j.conbuildmat.2018.05.199
  14. Kong, B., Wang, E., Li, Z., Wang, X., Chen, L. and Kong, X. (2016c), "Nonlinear characteristics of acoustic emissions during the deformation and fracture of sandstone subjected to thermal treatment", J. Rock Mech. Min. Sci., 90, 43-52. https://doi.org/10.1016/j.ijrmms.2016.10.004
  15. Kong, B., Wang, E., Li, Z., Wang, X., Niu, Y. and Kong, X. (2017a), "Acoustic emission signals frequency-amplitude characteristics of sandstone after thermal treated under uniaxial compression", J. Appl. Geophys., 136, 190-197. https://doi.org/10.1016/j.jappgeo.2016.11.008
  16. Kong, B., Wang, E.Y., Li, Z.H. and Niu, Y. (2017b), "Timevarying characteristics of electromagnetic radiation during the coal-heating process", J. Heat Mass Transfer, 108, 434-442. https://doi.org/10.1016/j.ijheatmasstransfer.2016.12.043
  17. Kong, B., Wang, E.Y., Li, Z.H., Wang, X.R., Liu, J. and Li, N. (2016b), "Fracture mechanical behavior of sandstone subjected to high-temperature treatment and its acoustic emission characteristics under uniaxial compression conditions", Rock Mech. Rock Eng., 49(12), 4911-4918. https://doi.org/10.1007/s00603-016-1011-3
  18. Kong, B., Wang, E.Y., Li, Z.H., Wang, X.R., Liu, X.F., Li, N. and Yang, Y.L. (2016a), "Electromagnetic radiation characteristics and mechanical properties of deformed and fractured sandstone after high temperature treatment", Eng. Geol., 209, 82-92. https://doi.org/10.1016/j.enggeo.2016.05.009
  19. Kuenzer, C. and Stracher, G.B. (2012), "Geomorphology of coal seam fires", Geomorphology, 138(1), 209-222. https://doi.org/10.1016/j.geomorph.2011.09.004
  20. Liu, Q.S. and Xu, X.C. (2000), "Damage analysis of brittle rock at high temperature", Chin. J. Rock Mech. Eng., 19(4), 408-411.
  21. Novikov, E.A., Oshkin, R.O., Shkuratnik, V.L., Epshtein, S.A. and Dobryakova, N.N. (2018), "Application of thermally stimulated acoustic emission method to assess the thermal resistance and related properties of coals", J. Min. Sci. Technol., 28(2), 243-249. https://doi.org/10.1016/j.ijmst.2017.12.019
  22. Ozguven, A. and Ozcelik, Y. (2014), "Effects of high temperature on physico-mechanical properties of Turkish natural building stones", Eng. Geol., 183, 127-136. https://doi.org/10.1016/j.enggeo.2014.10.006
  23. Rabinovitch, A., Bahat, D. and Frid, V. (2002), "Similarity and dissimilarity of electromagnetic radiation from carbonate rocks under compression, drilling and blasting", J. Rock Mech. Min. Sci., 39(1), 125-129. https://doi.org/10.1016/S1365-1609(02)00012-6
  24. Rong, H.R., Bai, H.B. and Wang, Z.S. (2015), "Experimental research on mechanical properties and microstructure change law of red sandstone after different temperatures", Rock Soil Mech., 36(2), 463-469.
  25. Song, D.Z., Wang, E.Y. and Li, Z.H. (2017), "EMR: An effective method for monitoring and warning of rock burst hazard", Geomech. Eng., 12(1), 53-69. https://doi.org/10.12989/gae.2017.12.1.053
  26. Sun, Q., Lu, C., Cao, L.W. and Li, W.C. (2016), "Thermal properties of sandstone after treatment at high temperature", J. Rock Mech. Min. Sci., 85, 60-66. https://doi.org/10.1016/j.ijrmms.2016.03.006
  27. Wang, E.Y., Jia, H.L., Song, D.Z., Li, N. and Qian, W.H. (2014), "Use of ultra-low-frequency electromagnetic emission to monitor stress and failure in coal mines", J. Rock Mech. Min. Sci., 70, 16-25. https://doi.org/10.1016/j.ijrmms.2014.02.004
  28. Wang, E.Y., Kong, B., Liang, J.Y., Liu, X.F. and Liu, Z.T. (2016), "Experimental study of electromagnetic radiation during coal heating", J. China Univ. Min. Technol., 45(2), 205-210.
  29. Wang, H., Nie, W., Cheng, W., Liu, Q. and Jin, H. (2018a), "Effects of air volume ratio parameters on air curtain dust suppression in a rock tunnel's fully-mechanized working face", Adv. Powder Technol., 29(2), 230-244. https://doi.org/10.1016/j.apt.2017.11.007
  30. Wang, H., Cheng, W., Sun, B., Yu, H. and Jin, H. (2018b), "The impacts of the axial-to-radial airflow quantity ratio and suction distance on air-curtain dust control in a fully mechanized coal face", Environ. Sci. Pollut. Res., 25(8), 7808-7822. https://doi.org/10.1007/s11356-017-1106-8
  31. Wang, C., Xiao, Y., Li, Q., Deng, J. and Wang, K. (2018c), "Free radicals, apparent activation energy, and functional groups during low-temperature oxidation of jurassic coal in northern Shaanxi", J. Min. Sci. Technol., 28(3), 469-475. https://doi.org/10.1016/j.ijmst.2018.04.007
  32. Wang, J., Kang, H., Liu, J., Chen, P., Fan, Z. and Yuan, W. (2018d), "Layout strategic research of green coal resource development in china", J. China Univ. Min. Technol., 47(1), 15-20.
  33. Wang, X., Wen, Z., Jiang, Y. and Huang, H. (2017), "Experimental study on mechanical and acoustic emission characteristics of rock-like material under non-uniformly distributed loads", Rock Mech. Rock Eng., 51(3), 729-745.
  34. Wang, Y.H., He, X.Q. and Dou, L.M. (2007), "Study on regularity and mechanism of acoustic emission and electromagnetic emission during fracture process of coal samples", Chin. J. Geophys., 50(5), 1569-1575.
  35. Wen, Z., Wang, X., Chen, L., Lin, G. and Zhang, H. (2017), "Size effect on acoustic emission characteristics of coal-rock damage evolution", Adv. Mater. Sci. Eng., 2, 1-8. https://doi.org/10.24218/msear.2017.24
  36. Wen, Z.J, Tan, Y.L, Han, Z.Z. and Meng, F.B. (2016a), "Construction of time-space structure model of deep stope and stability analysis", Polish J. Environ. Stud., 25(6), 2633-2639. https://doi.org/10.15244/pjoes/63779
  37. Wen, Z., Wang, X., Tan, Y., Zhang, H., Huang, W. and Li, Q. (2016b), "A study of rock burst hazard evaluation method in coal mine", Shock Vib., (16), 1-9.
  38. Wu, G., Zhai, S.T. and Sun, H. (2014), "Experimental study of acoustic emission of sale rock under high temperature", Chin. J. Rock Mech. Eng., 33(6), 1203-1211.
  39. Xie, H.P., Gao, F. and Ju, Y. (2015), "Research and development of rock mechanics in deep ground engineering", Chin. J. Rock Mech. Eng., 34(11), 2161-2178.
  40. Zhang, Y., Liang, P., Liu, X., Liu, S. and Tian, B. (2015), "Experimental study on precursor of rock burst based on acoustic emission signal dominant-frequency and entropy", Chin. J. Rock Mech. Eng., 34(S1), 2959-2967.
  41. Zhang, Y., Qu, F. and Zhao, Y.S. (2006), "Acoustic emission phenomena of thermal cracking of sandstone", Chin. J. Geotech. Eng., 28(1), 73-75.
  42. Zhang, Z.Z. and Gao, F. (2015), "Experimental investigations on energy evolution characteristics of coal, sandstone and granite during loading process", J. Chin. Univ. Min. Technol., 44(3), 416-422.
  43. Zhao, H.B., Yin, Z.G. and Chen, L.J. (2009), "Experimental study on effect of temperature on sandstone damage", Chin. J. Rock Mech. Eng., 28(1), 2783-2789.
  44. Zhou, F., Sun, Y., Li, H. and Yu, G. (2016), "Research on the theoretical model and engineering technology of the coal seam gas drainage hole sealing", J. Chin. Univ. Min. Technol., 45(3), 433-439.
  45. Zhou, G., Ma, Y., Fan, T. and Wang, G. (2018), "Preparation and characteristics of a multifunctional dust suppressant with agglomeration and wettability performance used in coal mine", Chem. Eng. Res. Des., 132, 729-742. https://doi.org/10.1016/j.cherd.2018.02.021
  46. Zhou, G., Zhang, Q., Bai, R., Fan, T. and Wang, G. (2017), "The diffusion behavior law of respirable dust at fully mechanized caving face in coal mine: CFD numerical simulation and engineering application", Process Safety Environ. Protect., 106, 117-128. https://doi.org/10.1016/j.psep.2016.12.005
  47. Zhu, T.T., Jing, H.W., Su, H.J., Yin, Q., Du, M.R. and Han, G.S. (2016), "Physical and mechanical properties of sandstone containing a single fissure after exposure to high temperatures", J. Min. Sci. Technol., 26(2), 319-325. https://doi.org/10.1016/j.ijmst.2015.12.019

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