Heat Capacity Mapping Mission (HCMM)
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Engineering topics
Publications and source records attributed to Mccracken, K. G..
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Data was obtained from instrumentation on Explorers 34 and 41 on cosmic-ray anisotropy and magnetic field vectors during five solar flare events. The analysis was conducted in the energy range from 0.7 to 7.6 MeV, of the late decay phase, to evaluate the dependence of net cosmic-ray anisotropy vector amplitude and direction on the magnetic field azimuth. Results showed that in the late decay phase the direction of the net cosmic-ray anisotropy vector was invariant in relation to the direction of the magnetic field, particle energy, and species. Within the statistical error of the available data the invariant direction was perpendicular to the mean magnetic field direction.
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The detailed relationship between the anisotropy characteristics observed during late times in the decay of a solar flare event and the interplanetary magnetic field parameters is investigated. The anisotropy always is from 45 deg east of the earth-sun line. This direction is approximately perpendicular to the nominal Archimedean spiral, independent of the particle energy. The amplitude of the anisotropy increases as the magnetic field azimuthal direction shows greater departure from the radial direction. These results are discussed in terms of current ideas about solar particle propagation in the interplanetary space.
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Detailed particle observations from various Pioneer spacecraft located at different heliolongitudes during the complex solar flare events of Mar. 30 to Apr. 10, 1969, have been utilized to investigate the energy dependence of azimuthal gradients of cosmic ray particles and its effect on the decay of the flare intensity. For an observer located to the east of the centroid of the population, the azimuthal corotation term and the convection term will be additive, resulting in a short decay time constant. An observer located to the west of the centroid of the population will experience a much longer decay time constant, the corotation term partially or completely compensating the loss of particles due to convection. At very low energies, the azimuthal corotation term may even be more than the convection term, thus resulting in a rise in intensity instead of decay during the later part of the event.
Solar low energy cosmic ray population anisotropy from satellite observations during flare event, describing rise time, decay, field alignment and time constant
Anomalous distribution in heliocentric longitude of solar injected cosmic radiation, suggesting interplanetary magnetic field lines of force stochastic wandering
Solar flare radiation data from Pioneer spacecraft, detailing anisotropy, heliocentric longitude gradients, decay time constants and energy spectra
Satellite-borne anisotropy and energy spectra measurement instruments for cosmic ray electrons and protons and solar and galactic X-rays
Anisotropy of solar cosmic ray electrons, considering parallel diffusion coefficients for ions and electrons
Pioneer 8 and 9 cosmic ray detector system, discussing mechanical, electrical and data conditioning properties
Solar cosmic ray phenomena, noting ionospheric effects and physical processes near sun
Solar flare event of 28 January 1967, observing parent flare location, particle fluxes and diffusion and spectral exponent
High energy solar flare data from neutron monitor stations supplemented by low energy data from interplanetary space probes Pioneer 6 and 7
Time dependence, anisotropy and spectral composition of cosmic radiation generated during series of flares during July 5-20, 1966 by Pioneer 6 observations
Solar cosmic ray anisotropy measurement by Explorer 34 satellite during solar flare events
Spectral properties of celestial X ray objects near galactic center from balloon observation, noting supernova origin and magnetic bremsstrahlung emission mechanism