1974Journal of Geophysical Research AtmospheresRequires access

A study of equatorial inner belt protons from 2 to 200 MeV

E. S. Claflin, R. S. White

Open publisher page 43 citations

Abstract

The diffusion theory of inner belt protons is extended to lower energies for comparison with the data of Hovestadt et al. The effects of Coulomb energy loss, nuclear inelastic scattering, and the secular decrease of the earth's magnetic field are included. The Farley and Walt solar cycle averaged atmosphere and a neutron source based on the most recent measurements are used. It is found that diffusion theory can account for the observed flux of low-energy protons provided that the diffusion coefficient increases at smaller values of the first invariant. This result is interpreted as additional evidence for the importance of electrostatic field fluctuations in causing radial diffusion. It is also found that the calculated excess of protons at and above 400 MeV/G cannot be attributed to omission of pitch angle scattering in the theory. Increasing the free electron density by a factor of 5 improves agreement between theory and experiment.

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What this paper is about

The diffusion theory of inner belt protons is extended to lower energies for comparison with the data of Hovestadt et al. The effects of Coulomb energy loss, nuclear inelastic scattering, and the secular decrease of the earth's magnetic field are included. The Farley and Walt solar cycle averaged atmosphere and a neutron source based on the most recent measurements are used. It is found that diffusion theory can account for the observed flux of low-energy protons provided that the diffusion coefficient increases at smaller values of the first invariant. This result is interpreted as additional evidence for the importance of electrostatic field fluctuations in causing radial diffusion. It is also found that the calculated excess of protons at and above 400 MeV/G cannot be attributed to omission of pitch angle scattering in the theory. Increasing the free electron density by a factor of 5 improves agreement between theory and experiment.

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Available abstract

The diffusion theory of inner belt protons is extended to lower energies for comparison with the data of Hovestadt et al. The effects of Coulomb energy loss, nuclear inelastic scattering, and the secular decrease of the earth's magnetic field are included. The Farley and Walt solar cycle averaged atmosphere and a neutron source based on the most recent measurements are used. It is found that diffusion theory can account for the observed flux of low-energy protons provided that the diffusion coefficient increases at smaller values of the first invariant. This result is interpreted as additional evidence for the importance of electrostatic field fluctuations in causing radial diffusion. It is also found that the calculated excess of protons at and above 400 MeV/G cannot be attributed to omission of pitch angle scattering in the theory. Increasing the free electron density by a factor of 5 improves agreement between theory and experiment.

Key concepts: Physics, Van Allen radiation belt, Diffusion, Atomic physics, Scattering, Pitch angle, Coulomb, Diffusion theory

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