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Experiments on shock stand-off distance in non-equilibrium flow

Published online by Cambridge University Press:  29 March 2006

Peter P. Wegener
Affiliation:
Department of Engineering and Applied Science, Yale University, New Haven, Connecticut
George Buzyna
Affiliation:
Department of Engineering and Applied Science, Yale University, New Haven, Connecticut

Abstract

An experimental investigation of the non-equilibrium behaviour of the shock stand-off distance ahead of spheres at low supersonic Mach number is reported. An intermittent wind tunnel operating with a reacting gas mixture with one non-equilibrium mode is described. A non-equilibrium parameter after Damköhler is determined for the flow and the experiments cover a range of this variable from near-frozen to near-equilibrium states. The shock stand-off distance is measured and found to vary as expected between these two bounds with a low value at equilibrium. With all other variables governing shock standoff distance held constant, such measurements can also be used to determine the relaxation time of the non-equilibrium mode.

Type
Research Article
Copyright
© 1969 Cambridge University Press

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References

Greenhill, A. G. 1880 Proc. Camb. Phil. Soc. 4, 4.
Greenspan, H. P. 1964 J. Fluid Mech. 20, 673.
Greenspan, H. P. 1965 J. Fluid Mech. 22, 449.
Greenspan, H. P. & Howard, L. N. 1963 J. Fluid Mech. 17, 325.
Haurwitz, B. 1940 J. Mar. Res. 3, 254.
Hough, S. S. 1898 Phil. Trans. A, 186, 297.
Lord, Kelvin 1877 Nature, Lond. 15, 297.
Longuet-Higgins, M. S. 1964 Proc. Roy. Soc. A, 279, 446.
Longuet-Higgins, M. S. 1965 Proc. Roy. Soc. A, 284, 40.
Longuet-Higgins, M. S. 1968 Phil. Trans. A, 262, 511.
Malkus, W. V. R. 1967 J. Fluid Mech. 28, 793.
Roberts, P. H. & Stewartson, K. 1963 J. Fluid Mech. 17, 1.
Rumiantsev, V. V. 1964 Adv. Appl. Mech. 8. London: Academic Press.
Stern, M. E. 1963 Tellus, 15, 246.
Stewartson, K. 1959 J. Fluid Mech. 5, 577.
Stewartson, K. 1967 Proc. Roy. Soc. A, 299, 173.
Whittaker, E. T. & Watson, G. N. 1927 A Course of Modern Analysis, Fourth Edition. Cambridge University Press.