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September 1, 1963The Physics of Fluids555 citations

Chemical Relaxation with Preferential Dissociation from Excited Vibrational Levels

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PMPaul V. MarroneCTCharles E. Treanor

Key Points

  • To calculate molecular dissociation rates behind strong shock waves assuming preferential dissociation occurs from higher vibrational energy levels.
  • Applied an anharmonic oscillator model incorporating an exponential probability of dissociation across varying vibrational levels.
  • Calculated non-equilibrium dissociation kinetics for oxygen in an argon diluent at temperatures between 4000°K and 8000°K.
  • Vibrational non-equilibrium introduced a T⁻³ temperature dependence into the oxygen dissociation rate constant within the 4000°–8000°K range.
  • Predicted a dissociation lag-time on the order of the extrapolated vibrational relaxation time immediately behind the shock front, aligning with experimental observations.

Abstract

The rate of molecular dissociation behind strong shock waves is calculated with the assumption that dissociation can occur preferentially from the higher vibrational levels. An exponential probability of dissociation from the various vibrational levels is employed using an anharmonic oscillator model. Results for the dissociation of oxygen in an argon diluent are presented. Vibrational non-equilibrium introduces a T−3 temperature dependence into the oxygen dissociation rate constant in the range 4000°–8000°K. A dissociation lag-time of the order of the extrapolated vibrational relax ation time is predicted immediately behind the shock front. The computed results are shown to be in agreement with available experimental results.

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Cite This Study

Marrone et al. (1963) studied this question.

synapsesocial.com/papers/69d7b7200a5b166600f30824https://doi.org/10.1063/1.1706888
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