Mechanics of Composite Materials

, Volume 16, Issue 6, pp 724–729 | Cite as

Human tibia in the presence of coxarthrosis and fracture using exponential ultrasonic concentrators

  • I. Ya. Dzene
  • V. V. Dzenis
  • L. I. Petukhova
  • A. M. Tatarinov
  • A. Ya. Yanson
Article

Keywords

Human Tibia 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

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Literature cited

  1. 1.
    I. M. Siegel, G. T. Anast, and Fields, “Determination of fracture healing by measurement of sound velocity across the fracture site,” Surg. Gyn. Obstet.,107. No. 3, 327–332 (1958).Google Scholar
  2. 2.
    S. Vogel, W. Wollenberg, and H. J. Päzolt, “Ultraschalldämpfungsmessung am menschlichen Röhrenknochen,” Wiss. Ztschr. der Humboldt-Univer. Nat.,21, No. 1, 75–78 (1972).Google Scholar
  3. 3.
    E. Ya. Dubrov, Ultrasonic Diagnostics for Injured Bones [in Russian], Moscow (1974).Google Scholar
  4. 4.
    Yu. K. Vilks, G. O. Pfafrod, Kh. A. Yanson, and Yu. Zh. Saulgozis, “Experimental investigation of the effect of fracture and operative intervention on the acoustic properties of the human tibia,” Mekh. Polim.1, No. 1. 88–96 (1978).Google Scholar
  5. 5.
    C. Rich, E. Klinik, R. Smith, and B. Graham, “Measurement of bone mass from ultrasonic transmission time,” Proc. Soc. Exp. Biol. Med.,123, 282–285 (1966).Google Scholar
  6. 6.
    R. Willner, B. Gramlich, M. Millner, and H. Runge, “Ultrasonic parameters for characterizing the state of bone in vivo,” New Trends in Ultrasonic Diagnostics, Summ. Deliv. Pap., 4 (1974).Google Scholar
  7. 7.
    V. V. Dzenis, A. A. Merten, V. K. Bernkhard, and V. V. Shumskii, “Use of ultrasonic surface waves for studying the properties of the human tibia,” Mekh. Polim., No. 4, 674–679 (1975).Google Scholar
  8. 8.
    A. A. Merten, V. V. Dzenis, V. V. Shumskii, V. K. Bernkhard, and G. A. Yankovskii, “Study of the effect of physical stress on the state of the human tibia according to ultrasonic measurement data,” Mekh. Polim., No. 6, 1079–1083 (1976).Google Scholar
  9. 9.
    I. A. Viktorov, Physical Basis of the Engineering Applications of Ultrasonic Rayleigh and Lamb Waves [in Russian], Moscow (1966).Google Scholar
  10. 10.
    É. Ya. Dubrov, I. V. Tarushin, and L. G. Zima, “Ultrasonic diagnostics for injured and diseased bones,” Khirargiya, No. 4, 61–66 (1972).Google Scholar
  11. 11.
    S. A. Gross, R. L. Johnston, and F. Dunn, “Comprehensive compilation of empirical ultrasonic properties of mammalian tissues,” J. Acoust. Soc., 423–457 (1978).Google Scholar
  12. 12.
    V. V. Shumskii, A. A. Merten, and V. V. Dzenis, “Effect of the type of physical stress on the state of the tibial bones of highly trained athletes as measured by ultrasound techniques,” Mekh. Polim., No. 5, 884–888 (1978).Google Scholar

Copyright information

© Plenum Publishing Corporation 1981

Authors and Affiliations

  • I. Ya. Dzene
    • 1
    • 2
    • 3
    • 4
  • V. V. Dzenis
    • 1
    • 2
    • 3
    • 4
  • L. I. Petukhova
    • 1
    • 2
    • 3
    • 4
  • A. M. Tatarinov
    • 1
    • 2
    • 3
    • 4
  • A. Ya. Yanson
    • 1
    • 2
    • 3
    • 4
  1. 1.Institute of Polymer MechanicsAcademy of Sciences of the Latvian SSRRiga
  2. 2.Riga Polytechnic InstituteUSSR
  3. 3.Riga Scientific-Research Institute for Traumatology and OrthopedicsUSSR
  4. 4.Elgava Municipal Central HospitalUSSR

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