Design of Magnetic Force Field for Trajectory Control of Levitated Diamagnetic Graphite

A diamagnetic material can be levitated in a strong magnetic field using a repulsive force due to its negative magnetic susceptibility. The magnitude of the repulsive force is proportional to the magnetic force field and the magnetic susceptibility of the material. Using this simple concept, a novel...

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Bibliographic Details
Published inInternational Journal of Precision Engineering and Manufacturing-Green Technology Vol. 5; no. 2; pp. 341 - 347
Main Authors Kang, Sumin, Kim, Jihoon, Pyo, Jae-Bum, Cho, Jae Hyung, Kim, Taek-Soo
Format Journal Article
LanguageEnglish
Published Seoul Korean Society for Precision Engineering 01.04.2018
Springer Nature B.V
한국정밀공학회
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Summary:A diamagnetic material can be levitated in a strong magnetic field using a repulsive force due to its negative magnetic susceptibility. The magnitude of the repulsive force is proportional to the magnetic force field and the magnetic susceptibility of the material. Using this simple concept, a novel method is developed for trajectory control of the levitated diamagnetic material without a power source. In this study, pyrolytic graphite (PG) is adopted as the levitated material due to its strong diamagnetic response. Various motions of a PG disk, such as linear, curved, and pendulum motions, are realized with unique permanent magnet arrays. These movements are successfully achieved through manipulating the magnetic force field variation, which is verified with simulation results. Furthermore, a photo-gated motion is accomplished through utilizing photo-thermal energy that is transferred with a laser beam. This study demonstrates the possibility of developing frictionless transport systems.
Bibliography:http://link.springer.com/article/10.1007/s40684-018-0036-3
ISSN:2288-6206
2198-0810
DOI:10.1007/s40684-018-0036-3