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Design of a Long-Stroke Noncontact Electromagnetic Actuator for Active Vibration IsolationA long-stroke moving coil Lorentz Actuator was designed for use in a microgravity vibration isolation experiment. The final design had a stroke of 5.08 cm (2 in) and enough force capability to isolate a mass of the order of 22.7-45.4 kg. A simple dynamic magnetic circuit analysis, using an electrical analog, was developed for the initial design of the actuator. A neodymium-iron-boron material with energy density of 278 T-kA/m (35 MGOe) was selected to supply the magnetic field. The effect of changes in the design parameters of core diameter, shell outer diameter, pole face length, and coil wire layers were investigated. An extensive three-dimensional finite element analysis was carried out to accurately determine linearity with regard to axial position of the coil and coil current levels. The actuator was constructed and tested on a universal testing machine. Example plots are shown, indicating good linearity over the stroke of approximately 5.08 cm (2 in) and a range of coil currents from -1.5 A to +1.5 A. The actuator was then used for the microgravity vibration isolation experiments, described elsewhere.
Document ID
19960052932
Acquisition Source
Headquarters
Document Type
Conference Paper
Authors
Banerjee, Bibhuti
(Precision Magnetic Bearing Systems, Inc. Cohoes, NY United States)
Allaire, Paul E.
(Virginia Univ. Charlottesville, VA United States)
Date Acquired
September 6, 2013
Publication Date
July 1, 1996
Publication Information
Publication: Third International Symposium on Magnetic Suspension Technology
Volume: Part 1
Subject Category
Mechanical Engineering
Accession Number
96N35925
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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