Journal of engineering physics

, Volume 40, Issue 3, pp 253–256 | Cite as

Experimental study of the acceleration of a layer of liquid

  • V. A. Brzhezitskii
  • G. G. Kapustyanenko
Article
  • 23 Downloads

Abstract

Measurements have been made on the basic dynamic parameters of the process during physical implementation under laboratory conditions.

Keywords

Experimental Study Statistical Physic Laboratory Condition Dynamic Parameter Physical Implementation 
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.
    D. Elliot, “Use of the magnetohydrodynamic cycle with two liquids to convert nuclear energy to electrical form,” Raketn. Tekh. Kosmonav., No. 6, 83–89 (1962).Google Scholar
  2. 2.
    R. Reybold, H. Lang, W. Westfal, and W. Lachteholtgreven, “Energy transformation in a liquid metal MHD converter in the form of a pressurized column of hydromonitor,” in: Magnetohydrodynamic Energy Conversion, Part II [in Russian], VINITI, Moscow (1966), pp. 17–29.Google Scholar
  3. 3.
    J. R. Powell, M. S. Zucker, J. P. Palmer, and W. W. Becker, “Studies of repetitive liquid metal slug MHD generator,” Engineering Development in Energy Conversion. First International Conference on Energetics, ASME, University of Rochester, August 18–20 (1965), pp. 15–32.Google Scholar
  4. 4.
    V. A. Bashkatov, G. S. Migirenko, and G. I. Rogachevskaya, “Motion of a liquid-metal piston in a magnetic field,” Zh. Prikl. Mekh. Tekh. Fiz., No. 4, 118–121 (1967).Google Scholar
  5. 5.
    G. M. Shchegolev, “Acceleration of liquid-metal pistons,” in: Heat-Engineering Problems in Direct Energy Conversion [in Russian], Issue 2, Naukova Dumka, Kiev (1971), pp. 74–82.Google Scholar
  6. 6.
    G. Birkhoff, Hydrodynamics, Princeton Univ. Press (1961).Google Scholar
  7. 7.
    D. J. Lewis, “The instability of liquid surfaces when accelerated in a direction perpendicular to their planes, Part II,” Proc. R. Soc.,202A, No. 1068, 81–96 (1950).Google Scholar
  8. 8.
    G. G. Kapustyanenko, “The rise of a gas bubble in a longitudinal magnetic field,” Magn. Gidrodin., No. 2, 143–145 (1974).Google Scholar
  9. 9.
    S. P. Yatsenko, V. I. Kononenko, V. N. Danilin, and E. P. Druzhinina, “Properties of gallium in aqueous solutions and alloys,” Tr. Inst. Khim. UFANSSSR, Issue 2, Sverdlovsk (1966), p. 122.Google Scholar

Copyright information

© Plenum Publishing Corporation 1981

Authors and Affiliations

  • V. A. Brzhezitskii
  • G. G. Kapustyanenko

There are no affiliations available

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