Cosmic ray and solar flare electrons
Cosmic ray electrons and solar flare particles by OGO-E and Explorer 33 data for identifying solar flare electrons
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Cosmic ray electrons and solar flare particles by OGO-E and Explorer 33 data for identifying solar flare electrons
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Anisotropy of solar cosmic ray electrons, considering parallel diffusion coefficients for ions and electrons
Solar cosmic ray anisotropy measurement by Explorer 34 satellite during solar flare events
Cosmic ray intensity relationship to solar activity
The composition of cosmic rays and solar particles is reviewed with emphasis on the question of whether they are representative samples of Galactic and solar matter. The composition of solar particles changes with energy and from flare to flare. A strong excess of heavy elements at energies below a few MeV/nuc decreases with energy, and at energies above 15 MeV/nuc the composition of solar particles resembles that of galactic cosmic rays somewhat better than that of the solar atmosphere. The elements Ne through Pb have remarkably similar abundances in cosmic ray sources and in the matter of the solar system. The lighter elements are depleted in cosmic rays, whereas U and Th may be enriched or not, depending on whether the meteoritic or solar abundance of Th is used.
Radiation doses due to van allen belts, galactic cosmic rays and solar cosmic rays for interplanetary flight
Cosmogenic Be-10 and Al-26 were measured in a suite of stony cosmic spherules derived from deep-sea sediments and the Greenland ice cap. These spherules show clear evidence of exposure to galactic cosmic ray and solar cosmic ray bombardment on time scales from a few times 100,000 years up to as much as 10 to the 7th years. The exposure took place in the inner solar system, not in highly eccentric orbits. When they reached the earth, the particles were not much larger than their present size, but it is not excluded that most of their cosmic ray exposure took place very close to the surface of an asteroidal body.
Solar cosmic ray multiply charged nuclei and July 18, 1961 solar event, discussing relative abundances and heavy nuclei detection
A three-dimensional polar orbit exploration of the sun and solar-related phenomena in the heliosphere through the International Solar Polar Mission (ISPM) is discussed. The characteristics of the out-of-the-ecliptic mission are mentioned and a detailed list of the scientific objectives is given: properties of the solar corona, the solar wind, the structure of the sun-wind interface, the heliospheric magnetic field, solar and non-solar cosmic rays, solar radio bursts and plasma waves, and the interstellar/interplanetary neutral gas and dust. Measurements of the Jovian magnetosphere during the Jupiter flyby phase and interplanetary physics investigations during the initial earth-Jupiter phase are pointed out as secondary objectives. The Nasa spacecraft with a sun-pointing despun platform on which the White Light Coronagraph/X-Ray and Extreme Ultraviolet Telescope (CXX), and the Mass Separating Ion Instrument are mounted, is detailed. The operational configuration of EASA, a spin stabilized spacecraft, is given and characteristics of special features such as the large paraboloidal high gain antenna, the radio-isotope thermoelectric generator, the radial boom and the central equipment compartment are described and shown in a diagram. The mission design and launch parameters block diagrams are given.
Galactic and solar cosmic ray propagation, variations, and energy spectra
Discussion of solar cosmic ray phenomena and related topics from the solar physical point of view. Since solar cosmic rays are usually produced by solar flares, it is necessary to understand the processes and mechanism of solar flares, especially the so-called proton flares, in order to understand the acceleration mechanism of solar cosmic rays and their behavior in both the solar atmosphere and interplanetary space. For this reason, a detailed discussion is given of various phenomena associated with solar flares, proton flare characteristics, and the mechanism of solar flares. Since the discovery of solar cosmic rays by Forbush, the interplanetary space has been thought of as a medium in which solar cosmic rays propagate. The propagation of solar cosmic rays in this space is therefore discussed briefly by referring to the observed magnetic properties of this space. Finally, some problems related to the physics of galactic cosmic rays are discussed.
Cosmic ray transport in solar wind generalized with anisotropic diffusion approximation
Cosmic rays propagation in solar wind, presenting statistical theory of interplanetary magnetic field effect on charged particles transport
Cosmic ray particle transport in solar corona by drifting along current sheets separating discontinuous magnetic field structures
Tritium and Ar radioactivities attributable to galactic and solar cosmic ray interactions in Apollo 11 lunar rocks and soil
Cosmic ray intensity short term stochastic variations in solar system related to turbulent solar wind day-to-day variations
Plasma velocity correlation with various indices of solar, cosmic ray and terrestrial activity measured during several solar rotations, using Mariner II spacecraft