Magneto-Mechanical Model of Passive Magnetic Axial Bearings versus the Eccentricity Error, Part II: Application and Results

Authors

  • Roberto Muscia Department of Engineering and Architecture University of Trieste, Trieste, Italy

Keywords:

Levitation, magnetic bearings, magnetostatic field, natural frequencies, stiffnesses

Abstract

In this paper we apply the physical mathematical model described in Part I [1]. The study shows: i) the influence of the eccentricity of two polarized rings of the bearing on the stiffness; ii) the numerical efficiency of the response surfaces for evaluating the magnetic field in any point of the domain fixed; iii), in relation to a demanding application example (possible replacement of a big axial oleodynamic bearing with a thrust magnetic passive bearing), the danger arising from possible resonances (the natural frequencies of the device are near to the excitation frequencies).

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References

R. Muscia, “Magneto-mechanical model of passive magnetic axial bearings versus the eccentricity error, Part I: Physical mathematical model,” ACES Journal, 2017.

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Published

2021-07-30

How to Cite

[1]
Roberto Muscia, “Magneto-Mechanical Model of Passive Magnetic Axial Bearings versus the Eccentricity Error, Part II: Application and Results”, ACES Journal, vol. 32, no. 08, pp. 678–684, Jul. 2021.

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Articles