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Visualization of Shock-vortex Interaction Radiating Acoustic Waves

Published: 01 August 2000 Publication History

Abstract

Unsteady compressible flow fields past a wedge and a cone, evolved by propagation and interaction of shock waves, slip lines, and vortices, are studied by shadowgraphs and holographic interferograms taken during the shock tube experiment. The supplementary numerical calculation also presented time-accurate solution of the shock wave physics which was essential to recognize the similarity and dissimilarity between the wedge and the conical flows. The decelerated shock detained by the vortex interacts with the small vortexlets along the slip layer, producing diverging acoustics: this phenomenon is more distinct in the case of wedge flow for a given shock Mach number. The decelerated shock penetrated through the vortex core constitutes a transmitted shock, which eventually merges with the diaphragm shock that bridges the vortex pair/vortex ring. This phenomenon became remarkably salient in the case of conical flow.

References

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Chang, K. S. and Kim, J. K., Numerical Investigation of Inviscid Shock Wave Dynamics in an Expansion Tube, Shock Waves, 5 (1995), 33-45.
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Chang, S. M. and Chang, K. S., Shock Wave Scattering Phenomena Behind a Finite Wedge, Proceeding of 5th Asian Symposium of Visualization 1998(Puspiptek Serpong, Indonesia), (1999-3), 47-52.
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Dosanjh, D. S. and Weeks, T. M., Interaction of a Starting Vortex as well as a Vortex Street with a Travelling Shock Wave, AIAA, 3 (1965), 216- 223.
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Cited By

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  • (2010)Time-resolved visualization of shock---vortex systems emitted from an open shock tubeJournal of Visualization10.1007/s12650-009-0009-213:1(33-40)Online publication date: 1-Feb-2010

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Published In

cover image Journal of Visualization
Journal of Visualization  Volume 3, Issue 3
August 2000
97 pages

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Springer-Verlag

Berlin, Heidelberg

Publication History

Published: 01 August 2000

Author Tags

  1. acoustic waves
  2. computational fluid dynamics (CFD)
  3. holographic interferometry
  4. shadowgraphy
  5. shock tube experiment
  6. shock wave diffraction
  7. vortexlets

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  • (2010)Time-resolved visualization of shock---vortex systems emitted from an open shock tubeJournal of Visualization10.1007/s12650-009-0009-213:1(33-40)Online publication date: 1-Feb-2010

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