ROTATIONAL RELAXATION IN NONPOLAR DIATOMIC GASES.

Abstract

The rotational-translational energy transfer in collisions between homonuclear diatomic molecules and the rotational relaxation time in diatomic gases have been investigated classically. Results are presented for the shear viscosity, thermal conductivity, and rotational relaxation time in N2 which compare favorably with experimental values. Results are included for both a coplanar and three-dimensional collision model. An approximate solution for the rotational energy transfer in coplanar collisions has been obtained for arbitrary initial values of the collision parameters. The rotational relaxation time was also evaluated using this approximate result and found to agree very well with the Monte-Carlo calculation over a range of temperatures. The approximate expression derived for the rotational relaxation time was evaluated for a wide range of potential parameters. The effect of unequal rotational and translational temperatures was also studied and found to be significant. The approximate results for the relaxation time are compared with experimental data for N2 and O2, obtained using a variety of techniques, including ultrasonic, shock-wave, and free-jet experiments. The agreement with experiment is very good, particularly with ultrasonic data recently obtained over a wide temperature range for N2 and O2. (Author)

Document Details

Document Type
Technical Report
Publication Date
May 01, 1969
Accession Number
AD0687613

Entities

People

  • John A. Lordi
  • Robert E. Mates

Organizations

  • Calspan

Tags

DTIC Thesaurus Topics

  • Collisions
  • Conductivity
  • Diatomic Molecules
  • Energy
  • Energy Transfer
  • Experimental Data
  • Heat Transfer
  • Molecules
  • New York
  • Relaxation Time
  • Shock Waves
  • Thermal Conductivity
  • Three Dimensional

Fields of Study

  • Physics

Readers

  • Molecular Photonics/Laser Physics