L-shell and energy dependence of magnetic mirror point of charged particles trapped in Earth’s magnetosphere

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dc.contributor.author Soni, Pankaj K.
dc.contributor.author Kakad, Bharati
dc.contributor.author Kakad, Amar
dc.date.accessioned 2022-06-08T07:49:43Z
dc.date.available 2022-06-08T07:49:43Z
dc.date.issued 2020
dc.identifier.citation Earth, Planets and Space, v. 72, https://doi.org/10.1186/s40623-020-01264-5 en_US
dc.identifier.uri http://library.iigm.res.in:8080/xmlui/handle/123456798/143
dc.description.abstract In the Earth’s inner magnetosphere, there exist regions like plasmasphere, ring current, and radiation belts, where the population of charged particles trapped along the magnetic feld lines is more. These particles keep performing gyration, bounce and drift motions until they enter the loss cone and get precipitated to the neutral atmosphere. Theoretically, the mirror point latitude of a particle performing bounce motion is decided only by its equatorial pitch angle. This theoretical manifestation is based on the conservation of the frst adiabatic invariant, which assumes that the magnetic feld varies slowly relative to the gyro-period and gyro-radius. However, the efects of gyro-motion cannot be neglected when gyro-period and gyro-radius are large. In such a scenario, the theoretically estimated mirror point latitudes of electrons are likely to be in agreement with the actual trajectories due to their small gyro-radius. Nevertheless, for protons and other heavier charged particles like oxygen, the gyro-radius is relatively large, and the actual latitude of the mirror point may not be the same as estimated from the theory. In this context, we have carried out test particle simulations and found that the L-shell, energy, and gyro-phase of the particles do afect their mirror points. Our simulations demonstrate that the existing theoretical expression sometimes overestimates or underestimates the magnetic mirror point latitude depending on the value of L-shell, energy and gyro-phase due to underlying guiding centre approximation. For heavier particles like proton and oxygen, the location of the mirror point obtained from the simulation deviates considerably (∼ 10°–16°) from their theoretical values when energy and L-shell of the particle are higher. Furthermore, the simulations show that the particles with lower equatorial pitch angles have their mirror points inside the high or mid-latitude ionosphere. en_US
dc.language.iso en en_US
dc.subject Earth’s inner magnetosphere en_US
dc.subject Trapped particle trajectories en_US
dc.subject Magnetic mirror points en_US
dc.subject Test particle simulation en_US
dc.title L-shell and energy dependence of magnetic mirror point of charged particles trapped in Earth’s magnetosphere en_US
dc.type Article en_US
dcterms.source https://doi.org/10.1186/s40623-020-01264-5


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