Lateral vibration suppression by varying stiffness control in a vertically active magnetic suspension system

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Abstract

Reduction of vibration in passively supported lateral directions by varying stiffness control is discussed in a vertically active magnetic suspension system. In the target system, one pair of electromagnets is arranged in differential driving mode to actively control the vertical motion of the floator. Usually the floator is prone to vibrate in the lateral direction because it is passively supported by virtue of the edge effect of the electromagnets. In this work, such vibrations are reduced by incrementing or decrementing the currents simultaneously during vibration without changing the vertical position of the floator. This control strategy is implemented in a developed apparatus where an iron ball is suspended by differentially operated electromagnets without any mechanical contact. Experiments are carried out, and the results show the reduction of lateral vibrations without changing the vertical position of the floator.

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APA

Javed, A., Mizuno, T., Takasaki, M., Ishino, Y., Hara, M., & Yamaguchi, D. (2018). Lateral vibration suppression by varying stiffness control in a vertically active magnetic suspension system. Actuators, 7(2). https://doi.org/10.3390/act7020021

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