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    PAPERS|November 01 2018

    Self-torque and angular momentum balance for a spinning charged sphere

    Béatrice Bonga;
    Béatrice Bonga
    Perimeter Institute for Theoretical Physics
    , Waterloo, Ontario N2L 2Y5,
    Canada
    Search for other works by this author on:
    Eric Poisson;
    Eric Poisson
    Department of Physics, University of Guelph
    , Guelph, Ontario N1G 2W1,
    Canada
    Search for other works by this author on:
    Huan Yang
    Huan Yang
    Department of Physics, University of Guelph
    , Guelph, Ontario, N1G 2W1,
    Canada
    and
    Perimeter Institute for Theoretical Physics
    , Waterloo, Ontario N2L 2Y5,
    Canada
    Search for other works by this author on:
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    Am. J. Phys. 86, 839–848 (2018)
    Article history
    Received:
    April 24 2018
    Accepted:
    August 30 2018
    Citation

    Béatrice Bonga,Eric Poisson,Huan Yang; Self-torque and angular momentum balance for a spinning charged sphere.Am. J. Phys. 1 November 2018; 86 (11): 839–848.https://doi.org/10.1119/1.5054590

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      Angular momentum balance is examined in the context of the electrodynamics of a spinning charged sphere, which is allowed to possess any variable angular velocity. We calculate the electric and magnetic fields of the (hollow) sphere, and express them as expansions in powers ofτ/tc ≪ 1, the ratio of the light-travel timeτ across the sphere and the characteristic time scaletc of variation of the angular velocity. From the fields we compute the self-torque exerted by the fields on the sphere, and argue that only a piece of this self-torque can be associated with radiation reaction. Then we obtain the rate at which angular momentum is radiated away by the shell, and the total angular momentum contained in the electromagnetic field. With these results we demonstrate explicitly that the field angular momentum is lost in part to radiation and in part to the self-torque; angular momentum balance is thereby established. Finally, we examine the angular motion of the sphere under the combined action of the self-torque and an additional torque supplied by an external agent.

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      © 2018 American Association of Physics Teachers.
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      • Online ISSN 1943-2909
      • Print ISSN 0002-9505
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