1887

Abstract

Summary

Physical modeling of layered medium electrointroscopy with inclusion of thin electrically conductive layer was performed. Pilot production studies were conducted in special cement wells drilled to create waterproofing curtains between flooded and operating mines in East Donbass. Field observations were accompanied with geological and technical data gathering and additional well research performing by well logging methods and spatial electrical filtration. Analysis of graphs and electro-tomography charts reflected of electrical field deformation were implemented for electrointroscopy of coalceous rocks formations by tomography grid.The outcome was an estimation degree of technogenetic and tectonic disturbance and watering of coalceous rocks formations in interwell space.

Loading

Article metrics loading...

/content/papers/10.3997/2214-4609.202051008
2020-09-14
2024-04-19
Loading full text...

Full text loading...

References

  1. BoykoV.D., GitlinYa.L.
    [1983]. Analysis of electrical correlation method possibilities in the study of tectonics of Donbass coal deposits // Geological journal, 3, 90–96.
    [Google Scholar]
  2. GrossuA.N., FomenkoN.Ye.
    [2008]. Electrointroscopy of water flow between mines in Eastern Donbass // Engineering and ore geophysics, 2008, IV International Science practical Conference and Exhibition "INZhGEO-2010", Gelendzhik, 25-30 of April 2008, 4.
    [Google Scholar]
  3. KaminskiyA.E., VorobyevaA.V., TitovK.V., MarenkoA.M.
    [2009]. Development of interpretation methodology of interwell electroscopy data // Engineering and ore geophysics, 2009, V International Science practical Conference and Exhibition "INZhGEO-2009", Gelendzhik, 26-30 of April 2009, 212.
    [Google Scholar]
  4. KiselevN.N., TumanovV.V., DyachenkoN.A., TrifonovA.S., ArkhipenkoA.I., TeryaevR.I.
    [2012]. The experience of complex geophysical, geomechanical and morphometric studies when choosing the location of cementing well for the waterproofing of an underworked object // Scientific works UkrNDMI NAN of Ukraine, 11, 65–93.
    [Google Scholar]
  5. KozyrinA.K.
    [1985]. Electrical correlation of well sections. Moscow. Nedra. 136.
    [Google Scholar]
  6. KulikovV.A., BobachevA.A., YakovlevA.G., GruzdevaI.D.
    [2013]. Interwell electrical tomography in the study of deep lying ore body in Norilsk region // Geophysics, 1, 27–34.
    [Google Scholar]
  7. LevitV.V., BorshevskyS.V., ProkopovA.Yu.
    [2012]. Main directions of big diameter mine well drilling improvement // Mountain Information and Analytical Bulletin (scientific and technical journal), 6, 39–46.
    [Google Scholar]
  8. MolevM.D.
    [2000]. Geophysical forecasting of mining and geological conditions of coal layer underground exploration /South-Russian State Technical University. Novocherkassk. YuRGTU. 138.
    [Google Scholar]
  9. Dowehole and mine ore geophysics / under edit of V.V. Brodovoy. Book second. Geophysics Reference. [1988]. Moscow. Nedra. 440.
    [Google Scholar]
  10. SkorobogatskyN.I.
    [2018]. About liquidation experience of coal wells of Eastern Donbass // Mine surveyor messenger, 3 (124), 12–21.
    [Google Scholar]
  11. FomenkoN.E.
    [1975]. Geological and geophysical attributes of ruptured disturbance in the well sections // MSU Bulletin, series Geology, 5, 118–121.
    [Google Scholar]
  12. [1993]. Applying of downhole electro-prospecting for special drilling work conduction // Ukraine Coal, 5, 37–38.
    [Google Scholar]
  13. FomenkoN.E., ZhurbitskyB.I., PorfilkinE.G.
    [2016]. Geophysical methods and technologies in modern coal geological exploration // Geophysics. 2, 61–68.
    [Google Scholar]
  14. HeJ.
    Combined [2018]. Application of Wide-Field Electromagnetic Method and Flow Field Fitting Method for High-Resolution Exploration: A Case Study of the Anjialing No. 1 Coal Mine // Engineering, 4, 667–675.
    [Google Scholar]
  15. PerriM. T., CassianiG., GervasioI., DeianaR., BinleyA.
    [2012]. A saline tracer test monitored via both surface and cross-borehole electrical resistivity tomography: Comparison of time- lapse results // Journal of Applied Geophysics, 79, 6–16.
    [Google Scholar]
  16. WangH., LinC-P.
    [2018]. Cause and countermeasures for the symmetric effect in borehole- to-surface electrical resistivity tomography // Journal of Applied Geophysics, 159, 248–259.
    [Google Scholar]
  17. XianxinS., KaiW.
    [2011]. Down-hole electromagnetic method for detecting water hazard of coal mine // Procedia Environmental Sciences, 11, 970–976.
    [Google Scholar]
http://instance.metastore.ingenta.com/content/papers/10.3997/2214-4609.202051008
Loading
/content/papers/10.3997/2214-4609.202051008
Loading

Data & Media loading...

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error