On the extraterrestrial ring current during geomagnetic storms
L. A. Frank
Abstract
L. A. Frank
Abstract
Measurements of the differential energy spectrums of protons and electrons, separately, over the energy range extending from ∼200 ev to 50 kev with a sensitive array of electrostatic analyzers borne on the earth-satellite OGO 3 reveal large temporal variations in intensities of these low-energy charged particles at low and moderate latitudes in the outer radiation zone during two moderate geomagnetic storms in late June and early July 1966. At L = 3.5 on July 9, for example, the intensities of protons (31 ≤ E ≤ 49 kev) increased by factors ≳30 over the pre-storm intensities. The peak proton (200 ev ≤ E ≤ 50 kev) energy densities at the magnetic equator for June 23 (relative magnetic quiescence), June 25 (DST(H) ≃ −30 γ), and July 9 (DST(H) ≃ −50 γ) were 9 × 10−8 erg(cm)−3 at L = 6.8, 2 × 10−7 erg(cm)−3 at L = 4.5, and 5 × 10−7 erg (cm)−3 at L = 3.3, respectively. This energy density is predominantly shared by protons in the energy range ∼3–50 kev. The total energy of these low-energy protons and electrons within the earth's magnetosphere is sufficient to account for the depression of the geomagnetic field (DST(H)) observed at the earth's surface over low and moderate latitudes; hence these charged particles may be identified as the major contributors to the storm-time extraterrestrial ring current. Electrons (200 ev ≤ E ≤ 50 kev) are found to provide approximately 25% of this storm-time ring current. The apparent mean lifetimes of low-energy protons in the outer radiation zone are in agreement with calculated lifetimes assuming charge-exchange collisions with the ambient neutral and charged constituents of the terrestrial exosphere as the predominant loss mechanism.
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Measurements of the differential energy spectrums of protons and electrons, separately, over the energy range extending from ∼200 ev to 50 kev with a sensitive array of electrostatic analyzers borne on the earth-satellite OGO 3 reveal large temporal variations in intensities of these low-energy charged particles at low and moderate latitudes in the outer radiation zone during two moderate geomagnetic storms in late June and early July 1966. At L = 3.5 on July 9, for example, the intensities of protons (31 ≤ E ≤ 49 kev) increased by factors ≳30 over the pre-storm intensities. The peak proton (200 ev ≤ E ≤ 50 kev) energy densities at the magnetic equator for June 23 (relative magnetic quiescence), June 25 (DST(H) ≃ −30 γ), and July 9 (DST(H) ≃ −50 γ) were 9 × 10−8 erg(cm)−3 at L = 6.8, 2 × 10−7 erg(cm)−3 at L = 4.5, and 5 × 10−7 erg (cm)−3 at L = 3.3, respectively. This energy density is predominantly shared by protons in the energy range ∼3–50 kev. The total energy of these low-energy protons and electrons within the earth's magnetosphere is sufficient to account for the depression of the geomagnetic field (DST(H)) observed at the earth's surface over low and moderate latitudes; hence these charged particles may be identified as the major contributors to the storm-time extraterrestrial ring current. Electrons (200 ev ≤ E ≤ 50 kev) are found to provide approximately 25% of this storm-time ring current. The apparent mean lifetimes of low-energy protons in the outer radiation zone are in agreement with calculated lifetimes assuming charge-exchange collisions with the ambient neutral and charged constituents of the terrestrial exosphere as the predominant loss mechanism.
Key concepts: Ring current, Geomagnetic storm, Magnetosphere, Physics, Van Allen radiation belt, Proton, Earth's magnetic field, Van Allen Probes