DOI QR코드

DOI QR Code

Geomechanical analysis of elastic parameters of the solid core of the Earth

  • Guliyev, Hatam H. (Department of Tectonophysics and Geomechanics, Institute of Geology and Geophysics of Azerbaijan National Academy of Sciences (ANAS))
  • Received : 2016.10.17
  • Accepted : 2017.06.17
  • Published : 2018.01.20

Abstract

It follows from the basic principles of mechanics of deformable solids relating to the strength, stability and propagation of elastic waves that the Earth's inner core cannot exist in the form of a spherical structure in the assumed thermobaric conditions and calculation values of physico-mechanical parameters. Pressure level reaches a value that is significantly greater than the theoretical limit of medium strength in the model approximations at the surface of the sphere of the inner core. On the other hand, equilibrium state of the sphere is unstable on the geometric forming at much lower loads under the influence of the "dead" surface loads. In case of the action of "follower" loads, the assumed pressure value on the surface of the sphere is comparable with the value of the critical load of "internal" instability. In these cases, due to the instability of the equilibrium state, propagation of homogeneous deformations becomes uneven in the sphere. Moreover, the elastic waves with actual velocity cannot propagate in such conditions in solid medium. Violation of these fundamental conditions of mechanics required in determining the physical and mechanical properties of the medium should be taken into account in the integrated interpretations of seismic and laboratory (experimental) data. In this case, application of the linear theory of elasticity and elastic waves does not ensure the reliability of results on the structure and composition of the Earth's core despite compliance with the required integral conditions on the mass, moment of inertia and natural oscillations of the Earth.

Keywords

Acknowledgement

Grant : Complex of theoretical and experimental studies of interdisciplinary problems of geomechanics

Supported by : ANAS

References

  1. Abasov, M.T., Kuliev, G.G. and Dzhevanshir, R.D. (2000), "Development model of the lithosphere", Doclady Rus. Acad. Sci., 70(2), 129-135.
  2. Adushkin, V.V., An, V.A., Kvazik, P.B. and Ovchinnikov, V.M. (2000), "The rotation of the inner core from seismic records of nuclear explosions", Тhesis of reports "The Inner Core of the Earth. Geophysical Data on Process in the Core", IPE RAS, Мoscow, Russia.
  3. Akbarov, S.D. (2013), Stability Loss and Buckling Delamination: Three-Dimensional Linearized Approach for Elastic and Viscoelastic Composites, Springer, Berlin, Germany.
  4. Akbarov, S.D. (2015), Dynamics of Pre-Strained Bi-Material Elastic Systems: Linearized Three-Dimensional Approach, Springer, Switzerland.
  5. Akbarov, S.D., Guliyev, H.H. and Yahnioglu N. (2016), "Natural vibration of the three-layered solid sphere with middle layer made of FGM: Three-dimensional approach", Struct. Eng. Mech., 57(2), 239-263. https://doi.org/10.12989/sem.2016.57.2.239
  6. Anderson, D. (2007), New Theory of the Earth, Cambridge University Press, New York, U.S.A.
  7. Anderson, O.L. (1995), Equations of State of Solids for Geophysics and Ceramic Science, Oxford University Press, New York, U.S.A.
  8. Antonangeli, D. and Ohtani, E. (2015), "Sound velocity of hcp-Fe at high pressure: Experimental constraints, extrapolations and comparison with seismic models", Prog. Earth Planet. Sci., 2(3), 1-11. https://doi.org/10.1186/s40645-015-0032-y
  9. Avsyuk, Y.N. (1973), "Motion of the inner core", Proc. USSR. Acad. Sci., 212(5), 1103-1105.
  10. Avsyuk, Y.N. (2001), Extraterrestrial Factors Affecting Tectogenesis, in Fundamental Problems of Global Tectonics, Scientific World, Мoscow, Russia.
  11. Badro, J., Cote, A.S. and Brodholt, J.P. (2014), "A seismologically consistent compositional model of Earth's core", Proc. Natl. Acad. Sci. USA, 111(21), 7542-7545. https://doi.org/10.1073/pnas.1316708111
  12. Biot, M.A. (1965), Mechanics of Incremental Deformation, Willey, New York, U.S.A.
  13. Birch, F. (1952), "Elasticity and constitution of the Earth's interior", J. Geophys. Res., 57(2), 227-286. https://doi.org/10.1029/JZ057i002p00227
  14. Bullen, K.E. (1978), The Density of the Earth, Mir, Moscow, Russia.
  15. Chen, B., Li Z., Zhang, D., Liu, J., Hu, M.Y., Zhao, J., Bi, W., Alp, E.E., Xiao, Y., Chow, P. and Li, J. (2014), "Hidden carbon in Earth's inner core revealed by shear softening in dense $Fe_7C_3$", Proc. Natl. Acad. Sci. USA, 111(50), 17755-17758. https://doi.org/10.1073/pnas.1411154111
  16. Decremps, F., Antonangeli, D., Gauthier, M., Ayrinhac, S., Morand, M., Marchand, G.L., Bergame, F. and Phillippe, J. (2014), "Sound velocity of iron up to 152 GPa by picosecond in diamond anvil cell", Geophys. Res. Lett., 41(5), 1459-1464. https://doi.org/10.1002/2013GL058859
  17. Deuss, A. (2014), "Heterogeneity and anisotropy of earth's inner core", Ann. Rev. Earth Planet. Sci., 42, 103-126. https://doi.org/10.1146/annurev-earth-060313-054658
  18. Dobretsov, N.L. and Shatskiy, A.F. (2012), "Deep carbon cycle and geodynamics: The role of the core and carbonatite melts in the lower mantle", Russ. Geol. Geophys., 53(11), 1117-1132. https://doi.org/10.1016/j.rgg.2012.09.001
  19. Dziewonski, A.M. and Anderson, D.L. (1981), "Preliminary reference earth model", Phys. Earth Planet. In., 25(4), 297-356. https://doi.org/10.1016/0031-9201(81)90046-7
  20. Guliyev, H.H. (2009), "Nonlinear actions of elastic medium and their effect on the propagation velocity of elastic waves", Proc. NAS Azerbaijan Earth Sci., (2), 31-39.
  21. Guliyev, H.H. (2010), "A new theoretical conception concerning the tectonic processes of the Earth", New Concept. Global Tectonics Newslett., (56), 50-74.
  22. Guliyev, H.H. (2011), "Fundamental role of deformations in internal dynamics of the Earth", New Concept. Global Tectonics Newslett., (61), 33-50.
  23. Guliyev, H.H. (2013), "Deformations, corresponding to processes of consolidation, deconsolidation and phase transitions in internal structures of the Earth", Geophys. J., 35(3), 166-176.
  24. Guliyev, H.H. and Askerov, A.D. (2007), "The solution of nonlinear problem on increase of environment density of the Earth depths and its instability", Proc. NAS Azerbaijan Earth Sci., (1), 38-50.
  25. Guz, A.N. (1979), Stability of Elastic Bodies Under Uniform Compression, Naukova Dumka, Kyiv, Ukraine.
  26. Guz, A.N. (1986a), Fundamentals of Three-Dimensional Theory of Stability of Deformable Bodies, Vishcha shkola, Head Publishing House, Kyiv, Ukraine.
  27. Guz, A.N. (1986b), Elastic Waves in Bodies with Initial Stresses, Propagation Patterns, Naukova Dumka, Kyiv, Ukraine.
  28. Guz, A.N. (1989), Fracture Mechanics of Composite Materials under Compression, Naukova Dumka, Kyiv, Ukraine.
  29. Hadji L., Hassaine Daouadji, T. and Adda Bedia, E.A. (2015), "A refined exponential shear deformation theory for free vibration of FGM beam with porosities", Geomech. Eng., 9(3), 361-372. https://doi.org/10.12989/gae.2015.9.3.361
  30. Helffrich, G. and Kaneshima, S. (2010), "Outer-core compositional stratification from observed core wave speed profiles", Nature, 468(7325), 807-810. https://doi.org/10.1038/nature09636
  31. Hirose, K., Labrosse, S. and Hernlund, J. (2013), "Composition and state of the core", Ann. Rev. Earth Planet. Sci., 41, 657-691. https://doi.org/10.1146/annurev-earth-050212-124007
  32. Kakar, R. and Kakar, Sh. (2016), "Rayleigh wave in an anisotropic heterogeneous crustal layer lying over a gravitational sandy substratum", Geomech. Eng., 10(2), 137-154. https://doi.org/10.12989/gae.2016.10.2.137
  33. Kennett, B.L.N. and Engdahl, E.R. (1991), "Traveltimes for global earthquake location and phase identification", Geophys. J., 105(2), 429-465. https://doi.org/10.1111/j.1365-246X.1991.tb06724.x
  34. Kennett, B.L.N., Engdahl, E.R. and Buland, R. (1995), "Constraints on seismic velocities in the Earth from traveltimes", Geophys. J., 122(1), 108-124. https://doi.org/10.1111/j.1365-246X.1995.tb03540.x
  35. Kuliev, G.G. (1988a), "A new approach to calculation of the theoretical ultimate strength of materials", Strength Mater., 20(5), 623-629. https://doi.org/10.1007/BF01528552
  36. Kuliev, G.G. (1988b), Fundamentals of the Mathematical Theory of the Stability of Wells, Elm, Baku, Azerbaijan.
  37. Kuliev, G.G. and Jabbarov, M.J. (1998), "To elastic waves propagation in strained nonlinear anisotropic media", Proc. NAS Azerbaijan Earth Sci., (2), 103-112.
  38. Kuliev, G.G. and Jabbarov, M.J. (2000), "Amplitude characteristics of elastic waves in stressed medium", Doclady Russ. Acad. Sci., 370(4), 672-674.
  39. Kuskov, O.L. and Khitarov, N.I. (1982), Thermodynamics and Geochemistry of the Core and Mantle of the Earth, Nauka, Мoscow, Russia.
  40. Levin, B.V. (2001), The Role of the Earth's Inner Core Movements in the Tectonic Processes, in Fundamental Problems of Global Tectonics, Scientific World, Мoscow, Russia.
  41. Li, J. and Fei, Y. (2014), Experimental Constraints on Core Composition, in Treatise on Geochemistry, Elsevier, Oxford.
  42. Li, X. and Tao, M. (2015), "The influence of initial stress on wave propagation and dynamic elastic coefficients", Geomech. Eng., 8(3), 377-390. https://doi.org/10.12989/gae.2015.8.3.377
  43. Litasov, K.D. and Shatskiy, A.F. (2016), "Composition of the Earth's core: A review", Russ. Geol. Geophys., 57(1), 22-46. https://doi.org/10.1016/j.rgg.2016.01.003
  44. Lobkovski, L.I., Nikishin, A.M. and Hain, V.E. (2004), Modern Problems of Geotectonics and Geodynamics, Scientific World, Moscow, Russia.
  45. Lyav, A.I. (1935), The Mathematical Theory of Elasticity, ONTI, Moscow, Russia.
  46. Mao, Z., Lin, J.F., Liu, J., Alatas, A., Gao, L., Zhao, J. and Mao, H.K. (2012), "Sound velocities of Fe and Fe-Si alloy in the Earth's core", Proc. Natl. Acad. Sci. USA, 109(26), 10239-10244. https://doi.org/10.1073/pnas.1207086109
  47. Molodenskii, S.M. (2010), "Correctives to the scheme of the Earth's structure inferred from new data on nutation, tides, and free oscillations", Izvestiya Phys. Solid Earth, 46(7), 555-579. https://doi.org/10.1134/S1069351310070013
  48. Molodenskii, S.M. and Molodenskaya, M.S. (2015), "Attenuation of free spheroidal oscillations of the Earth after the M=9 earthquake in Sumatra and the super-deep earthquake in the Sea of Okhotsk: I. The admissible Q-factor range for the fundamental mode and overtones of the free spheroidal oscillations", Izvestiya Phys. Solid Earth, 51(6), 821-839. https://doi.org/10.1134/S1069351315060051
  49. Molodenskii, S.M. and Molodenskii, M.S. (2015), "Attenuation of free spheroidal oscillations of the Earth after the M=9 earthquake in Sumatra and super-deep earthquake in the Sea of Okhotsk: II. Interpretation of the observed Q-factor", Izvestiya Phys. Solid Earth, 51(6), 840-856. https://doi.org/10.1134/S1069351315060063
  50. Molodensky, M.S. (2001), The Gravitational Field. The Figure and the Internal Structure of the Earth, Nauka, Moscow, Russia.
  51. Morelli, A. and Dziewonski, A.M. (1993), "Body-wave traveltimes and a spherically symmetric P- and S-wave velocity model", Geophys. J., 112(2), 178-194. https://doi.org/10.1111/j.1365-246X.1993.tb01448.x
  52. Nimmo, F. (2015), Energetics of the Core, in Treatise on Geophysics, Elsevier, Oxford.
  53. Ohtani, E., Shibazaki, Y., Sakai, T., Mibe, K., Fukui, H., Kamada, S., Sakamaki, T., Seto, Y., Tsutsui, S. and Baron, A.Q. (2013), "Sound velocity of hexagonal close-packed iron up to core pressures", Geophys. Res. Lett., 40(19), 5089-5094. https://doi.org/10.1002/grl.50992
  54. Prescher, C., Dubrovinsky, L., Bykova, E., Kupenko, I., Glazyrin, K., Kantor, A., VcCammon, C., Mookherjee, M., Nakajima, Y. and Miyajima, N. (2015), "High poisson's ratio of Earth's inner core explained by carbon alloying", Nat. Geosci., 8(3), 220-223. https://doi.org/10.1038/ngeo2370
  55. Pushcharovsky, Y.M. and Pushcharovsky, D.Y. (2011), "When, how and why were the Earth's geospheres formed", Priroda, (5), 25-31.
  56. Rabotnov, Y.N. (1988), Mechanics of Deformable Solids, Nauka, Moscow, Russia.
  57. Sadovsky, M.A. and Nikolaev, A.V. (1982), "New methods of seismic exploration. Prospects of development", Bull. Acad. Sci. USSR, 52(1), 57-64.
  58. Sedov, L.I. (1970), Mechanics of the Continuum Medium, Nauka, Moscow, Russia.
  59. Sorokhtin, O.G. and Ushakov, S.A. (2002), Earth Development, MGU, Moscow, Russia.
  60. Souriau, A. and Calvet, M. (2015), Deep Earth Structure: The Earth's Cores, in Treatise on Geophysics, Elsevier, Oxford.
  61. Tao, M., Chen, Z., Li, X., Zhao, H. and Yin, T. (2016), "Theoretical and numerical analysis of the influence of initial stress gradient on wave propagations", Geomech. Eng., 10(3), 285-296. https://doi.org/10.12989/gae.2016.10.3.285
  62. Teachavorasinskun, S. and Pongvithayapanu, P. (2016), "Shear wave velocity of sands subject to large strain triaxial loading", Geomech. Eng., 11(5), 713-723. https://doi.org/10.12989/gae.2016.11.5.713
  63. Thurston, R. and Brugger, K. (1964), "Third-order elastic constants and velocity of small amplitude elastic waves in homogeneously stressed media", Phys. Rev., 133(6A), 1604-1610. https://doi.org/10.1103/PhysRev.133.A1604
  64. Truesdell, K. (1975), Initial Course of Rational Mechanics of Continuum Media, Nauka, Moscow, Russia.
  65. Wang, T., Song, X. and Xia, H.H. (2015), "Equatorial anisotropy in the inner part of Earth's inner core from autocorrelation of earthquake coda", Nat. Geosci., 8(3), 224-227. https://doi.org/10.1038/ngeo2354
  66. Zharkov, V.N. (2012), Physics of the Earth's Interior, Nauka i obrazovanie, Moscow, Russia.