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    Helical field-driven translational-rotational conversion in conductors

    M. D. Tokman1, V. L. Bratman1, E. Magori2, and N. Balal1,*

    • 1Department of Electrical and Electronic Engineering, and Schlesinger Family Center for Compact Accelerators, Radiation Sources and Applications (FEL), Ariel University, 40700 Ariel
    • 2Department of Electrical and Electronic Engineering, Jerusalem College of Technology, 91160 Jerusalem, Israel

    • *Contact author: nezahb@ariel.ac.il

    Phys. Rev. E 113, 034213 – Published 12 March, 2026

    DOI: https://doi.org/10.1103/tnpy-3t47

    Abstract

    A theory of a new magnetodynamic effect describing the energy exchange between the degrees of freedom of a conducting cylinder moving in a helical magnetic field has been developed. The possibility of effectively converting the translational motion of the cylinder into its angular rotation around the system axis [translational-rotational conversion (TRC)] has been demonstrated. A connection between this effect and the formation of helical trajectories of electrons in undulators in free-electron lasers and the inverse Faraday effect has been revealed. In TRC, unlike many known effects associated with the interaction of a moving conductor with a magnetic field, the conductor has no electrical contact with any external circuit, which makes it especially attractive for various applications. The TRC is also possible in a magnetohydrodynamic flow moving along the axis of a helical magnetic field. The theory is formulated in the limit of large magnetic Reynolds numbers, which corresponds to a sufficiently fast motion of well-conducting objects. In this scenario, the dynamics of the system is described by a nonlinear pendulum equation or a nonlinear pendulum equation with a nonzero right-hand side. In the latter case, a system dynamic mode corresponding to phase lock can be implemented.

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