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Features of thermomechanical effects in rock salt samples under uniaxial compression

  • Geomechanics
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Abstract

The article describes the uniaxial compression tests on rock salt samples under monotonic loading, which were carried out with the synchronous record of changes in thermal radiation and mechanical parameters. A relationship between the nonlinear deformation stages and the features of thermomechanical processes is found. The rate of change in rock stress state is shown to affect the information value of variations in the attendant infrared radiation. The experimental results point out the possibility of using the method in monitoring of the real geomechanical objects.

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References

  1. Ogawa, T., Oike, K., and Miura, T., “Electromagnetic Radiations from Rocks,” J. Geophys. Research, 1985, vol. 90.

  2. Khatiashvili, N.G., “The Electromagnetic Effect Accompanying the Fracturing of Alkaline Halide Crystals and Rocks,” Fiz. Zemli, 1984, no. 9.

  3. Oliver, D., “Stress Pattern Analysis by Thermal Emission,” in Handbook on Experimental Mechanics, Kobayashi, A., Ed., New Jersey: Prentice Hall, 1987, vol. 2.

    Google Scholar 

  4. Dulieu-Barton, J. M. and Stanley, P., “Development and Applications of Thermoelastic Stress Analysis,” J. Strain Anal., 1988, vol. 33.

  5. Abramova, K.B., Shcherbakov, I.P., and Semenov, A.A., “Emission Processes Accompanying Deformation and Fracture of Metals,” Fiz. Tverd. Tela, 1999, vol. 41, no. 5.

  6. Kurlenya, M.V., Vostretsov, A.G., Kulakov, G.I., and Yakovitskaya, G.E., Registratsiya i obrabotka signalov elektromagnitnogo izlucheniya gornykh porod (Recording and Processing of Electromagnetic Radiation Signals in Rocks), Novosibirsk: SO RAN, 2000.

    Google Scholar 

  7. Voznesensky, A.S., Nabatov, V.V., and Nabatov, Vl.V., “Estimate of Stress-Strain State of Rock Mass by the Method of Electromagnetic Radiation Recording,” Izv. Vuzov, Gorny Zh., 2004, no. 5.

  8. Sheinin, V.I., Motovilov, E.A., and Filippova, S.V., “Estimating the Change in the Stress State of Soils and Rocks from the Change in the Flux Intensity of Infrared Radiation from their Surface,” J. Min. Sci., 1994, vol. 30, no. 3, pp. 240–246.

    Article  Google Scholar 

  9. Sheinin, V.I., Levin, B.V., Motovilov, E.A., Morozov, A.A., and Favorov, A.V., “Identification of Periodical Changes in Stress State of Geomaterials by Infrared Radiometry Data,” Fiz. Zemli, 2001, no. 4.

  10. Sheinin, V.I., Levin, B.V., Blokhin, D.I., and Favorov, A.V., “Infrared Diagnostics of the Response of Geomaterials to Pulse and Shock Loads,” DAN, 2004, vol. 395, no. 6.

  11. Egorov, P.V., Denisov, A.S., and Minaev, S.M., Tribolyuministsentnyi sposob otsenki napryazhennogo sostoyaniya gornogo massiva. Geofizicheskie sposoby kontrolya napryazhenii i deformatsii (Triboluminescent Process for Assessment of Stress State in a Rock Mass. Geophysical Processes for Monitoring Stresses and Strains), Novosibirsk: IGD SO AN SSSR, 1985.

    Google Scholar 

  12. Nadai, A., Theory of Flow and Fracture of Solids, New York: McGraw-Hill, 1963.

    Google Scholar 

  13. Kriksunov, L.Z., Spravochnik po osnovam infrakrasnoi tekhniki (Handbook on Infrared Technique Principles), Moscow: Sov. Radio, 1978.

    Google Scholar 

  14. Il’in, A.S., “Thermoelectric Detectors for Optical Radiation,” Metrologiya, 2005, no. 11.

  15. Stavrogin, A.N. and Tarasov, B.G., Eksperimental’naya fizika i mekhanika gornykh porod (Experimental Physics and Mechanics of Rocks), Saint Petersburg: Nauka, 2001.

    Google Scholar 

  16. Zhigalkin, V.M., Usol’tseva, O.M., Semenov, V.N., Tsoi, P.A., et al., “Deformation of Quasi-Plastic Salt Rocks under Different Conditions of Loading. Report I: Deformation of Salt Rocks under Uniaxial Compression,” J. Min. Sci., 2005, vol. 41, no. 6, pp. 507–515.

    Article  Google Scholar 

  17. Wu, L., Liu, S., Wu, Y., and Wang, C., “Precursors for Fracturing and Failure, Part II: IRR T-Curve Abnormalities,” Int. J. Rock Mech. Min. Sci., 2006, vol. 43, no. 3.

  18. Yixin, Z. and Yaodong, J., “Acoustic Emission and Thermal Infrared Precursors Associated with Bump-Prone Coal Failure,” Int. J. Coal Geol., 2010, vol. 83, no. 1.

  19. Sheinin, V.I., Blokhin, D.I., and Druzhinskaya, D.S., “Effect of the Rate of Loading the Geomaterial Samples on the Kinetics of Measured Thermomechanical Parameters,” Proc. XX Int. Scientific School Named after Academician S. A. Khristianovich, Simferopol: Tavrich. Nats. Univ., 2010.

    Google Scholar 

  20. Beron, A.I., Vatolin, E.S., Koifman, M.I., Mokhnachev, M.P., and Chirkov, S.E., Svoistva gornykh porod pri raznykh vidakh i rezhimakh nagruzheniya (Rock Properties under Various Loading Conditions), Moscow: Nedra, 1984.

    Google Scholar 

  21. Filimonov, Y., Lavrov, A., and Shkuratnik, V., “Acoustic Emission in Rock Salt: Effect of Loading Rate,” Strain, 2002, vol. 38.

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Original Russian Text © V.I. Sheinin, D.I. Blokhin, 2012, published in Fiziko-Tekhnicheskie Problemy Razrabotki Poleznykh Iskopaemykh, 2012, No. 1, pp. 46–53.

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Sheinin, V.I., Blokhin, D.I. Features of thermomechanical effects in rock salt samples under uniaxial compression. J Min Sci 48, 39–45 (2012). https://doi.org/10.1134/S1062739148010054

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  • DOI: https://doi.org/10.1134/S1062739148010054

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