The Interchange Instability in High-Latitude Plasma Blobs.

Abstract

The stability of high latitude plasma density enhancements (blobs) is analyzed with regard to the interchange model (driven by a neutral wind or transverse electric field acting on the density gradient at the walls of the blobs). The effects arising from the finite parallel length of the blobs along the magnetic field lines are included in the analysis. Plasma regions of differing collisionalities, to which the blobs extend in altitude, are considered. We find that the finite-parallel blob size results in a modest reduction in the growth rates of the small somewhat < 1 km) and intermediate (1-10 km) scale sizes, but severely reduces the growth rates, for the large scale sizes (> 10 kms) for the observed parallel blob lengths (approx. 300-600 kms). Further, it is found that the instability growth rates show a moderate reduction at higher altitudes (where ion-inertial effects may be dominant over the ion neutral collisional effects). thus, the E x B instability is considered a plausible candidate for the scintillation causing irregularities (1-10 kms) associated with the high latitude blobs. Keywords include: Ionospheric structure; Interchange instability; Radio scintillation mechanism; High latitude ionosphere.

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Document Details

Document Type
Technical Report
Publication Date
Dec 30, 1986
Accession Number
ADA176242

Entities

People

  • Joseph D. Huba
  • P. K. Chaturvedi

Organizations

  • United States Naval Research Laboratory

Tags

Communities of Interest

  • Advanced Electronics
  • Space

DTIC Thesaurus Topics

  • Altitude
  • Classification
  • Dispersion Relations
  • Electric Fields
  • Electron Density
  • Electrons
  • Equations
  • Frequency
  • High Altitude
  • High Latitudes
  • Ionosphere
  • Latitude
  • Long Wavelengths
  • Magnetic Fields
  • Military Research
  • Security
  • Two Dimensional

Fields of Study

  • Physics

Readers

  • Plasma Physics / Magnetohydrodynamics
  • Space/Atmospheric Physics.