Computational Study of Collisions Between O(3P) and NO(2Pi) at Temperatures Relevant to the Hypersonic Flight Regime

Abstract

Reactions involving N and O atoms dominate the energetics of the reactive air flow around spacecraft when reentering the atmosphere in the hypersonic flight regime. For this reason, the thermal rate coefficients for reactive processes involving O(^3P) and NO(^2Pi) are relevant over a wide range of temperatures. For this purpose, a potential energy surface (PES) for the ground state of the NO2 molecule is constructed based on high-level ab initio calculations. These ab initio energies are represented using the reproducible kernel Hilbert space method and Legendre polynomials. The global PES of NO2 in the ground state is constructed by smoothly connecting the surfaces of the grids of various channels around the equilibrium NO2 geometry by a distance-dependent weighting function. The rate coefficients were calculated using Monte Carlo integration. The results indicate that at high temperatures only the lowest A-symmetry PES is relevant. At the highest temperatures investigated (20 000 K), the rate coefficient for the O1O2+N channel becomes comparable (to within a factor of around three) to the rate coefficient of the oxygen exchange reaction. A state resolved analysis shows that the smaller the vibrational quantum number of NO in the reactants, the higher the relative translational energy required to open it and conversely with higher vibrational quantum number, less translational energy is required. This is in accordance with Polanyi's rules. However, the oxygen exchange channel (NO2+O1) is accessible at any collision energy. Finally, this work introduces an efficient computational protocol for the investigation of three-atom collisions in general.

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Document Details

Document Type
Technical Report
Publication Date
Oct 29, 2014
Accession Number
ADA621861

Entities

People

  • Juan C. Castro-palacio
  • Markus Meuwly
  • Raymond J Bemish
  • Tibor Nagy

Organizations

  • Air Force Research Laboratory

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Air Force Research Laboratories
  • Angular Momentum
  • Chemical Reaction Properties
  • Chemical Reactions
  • Chemistry
  • Dissociation
  • Exchange Reactions
  • First Principles Calculations
  • Geometry
  • Ground State
  • High Temperature
  • Hypersonic Flight
  • Molecular Dynamics
  • Monte Carlo Method
  • Potential Energy
  • Quantum Numbers
  • Spacecraft

Fields of Study

  • Physics

Readers

  • Approximation Theory.
  • Molecular Photonics/Laser Physics
  • Quantum Chemistry

Technology Areas

  • Hypersonics
  • Hypersonics - Hypersonic Flight
  • Quantum Computing
  • Quantum Science - Quantum Key Distribution
  • Space