Design, Dynamics, and Dissipation of a Torsional-Magnetic Spring Mechanism
Ali Kanj, Rhinithaa P. Thanalakshme, Chengzhang Li, John Kulikowski,, Gaurav Bahl, Sameh Tawfick

TL;DR
This paper investigates a magnetic torsional oscillator combining analytical modeling and experimental validation, revealing nonlinear behaviors and potential applications in electromagnetic communication and metamaterials.
Contribution
It introduces a comprehensive analytical and experimental study of a magnetic torsional oscillator with nonlinear dynamics and damping mechanisms.
Findings
Validated an analytical model with experimental data
Discovered nonlinear softening and stiffening behaviors
Demonstrated potential applications in signal transmission
Abstract
We present an analytical and experimental study of torsional magnetic mechanism where the restoring torque is due to magnetic field interactions between rotating and fixed permanent magnets. The oscillator consists of a ball bearing-supported permanent magnet, called the rotor, placed between two fixed permanent magnets called the stators. Perturbing the rotor from its equilibrium angle induces a restoring magnetic torque whose effect is modeled as a torsional spring. This restoring effect is accompanied by dissipation mechanisms arising from structural viscoelasticity, air and electromagnetic damping, as well as friction in the ball bearings. To investigate the system dynamics, we constructed an experimental setup capable of mechanical, electrical and magnetic measurements. For various rotor-stator gaps in this setup, we validated an analytical model that assumes viscous and dry…
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