Performance of Magnetic-Superconductor Non-Contact Harmonic Drive for Cryogenic Space Applications
Author(s):
Perez-Diaz, Jose Luis; Díez Jiménez, Efrén; Valiente Blanco, Ignacio; Cristache, Cristian; Álvarez Valenzuela, Marco Antonio; Sánchez García-Casarrubios, Juan; Ferdeghini, Carlo; Canepa, Fabio; Hornig, Wolfgang; Carbone, Giuseppe; Plechacek, Jan; Amorim, Antonio; Frederico, Tiago; Gordo, Paulo; Abreu, Jorge; Sanz, Violeta; Ruiz Navas, Elisa María; Martinez Rojas, Juan Antonio
Publisher:
MDPI
Issued date:
2015-07-01
Citation:
Perez-Diaz, J. L., Diez-Jimenez, E., Valiente-Blanco, I., Cristache, C., Alvarez-Valenzuela, M. A., Sanchez-Garcia-Casarrubios, J., Ferdeghini, C., Canepa, F., Hornig, W., Carbone, G., Plechacek, J., Amorim, A., Frederico, T., Gordo, P., Abreu, J., Sanz, V., Ruiz-Navas, E. M., Martinez-Rojas, J. A. (2015).Performance of Magnetic-Superconductor Non-Contact Harmonic Drive for Cryogenic Space Applications. Machines, 3 (3), pp. 138-156.
ISSN:
2075-1702
Sponsor:
The research leading to these results has received funding from the European Community’s Seventh Framework Programme ([FP7/2007–2013]) under grant agreement n° 263014. The FP7 MAGDRIVE project (www.magdrive.eu) is a cooperation project inside the Space program of the European Commission. Seven partners have participated: Universidad Carlos III de Madrid (Mechanical Engineering department), Università di Cassino e del Lazio Meridionale (LAMIA group), CNR (Istituo SPIN), CAN Superconductors, BPE e.K., LIDAX ingenieria S.L., and the Faculdade de Ciencias da Univerisdade de Lisboa (SIM lab). Special acknowledgment to Fernando Serrano, workshop technician at UC3M.
Project:
info:eu-repo/grantAgreement/EC/FP7/263014
Keywords:
Magdrive
,
Harmonic drive
,
Magnetic gear
,
Cryogenics
,
Space mechanism
,
Contactless device
,
Superconducting magnetic bearings
Rights:
© 2015 by the authors; licensee MDPI, Basel, Switzerland.
Atribución-NoComercial-SinDerivadas 3.0 España
Abstract:
Harmonic drives are profusely used in aerospace mainly because of their compactness and large reduction ratio. However, their use in cryogenic environments is still a challenge. Lubrication and fatigue are non-trivial issues under these conditions. The objecti
Harmonic drives are profusely used in aerospace mainly because of their compactness and large reduction ratio. However, their use in cryogenic environments is still a challenge. Lubrication and fatigue are non-trivial issues under these conditions. The objective of the Magnetic-Superconductor Cryogenic Non-contact Harmonic Drive (MAGDRIVE) project, funded by the EU Space FP7, is to design, build, and test a new concept of MAGDRIVE. Non-contact interactions among magnets, soft magnetic materials, and superconductors are efficiently used to provide a high reduction ratio gear that smoothly and naturally operates at cryogenic environments. The limiting elements of conventional harmonic drives (teeth, flexspline, and ball bearings) are substituted by contactless mechanical components (magnetic gear and superconducting magnetic bearings). The absence of contact between moving parts prevents wear, lubricants are no longer required, and the operational lifetime is greatly increased. This is the first mechanical reducer in mechanical engineering history without any contact between moving parts. In this paper, the test results of a −1:20 inverse reduction ratio MAGDRIVE prototype are reported. In these tests, successful operation at 40 K and 10−3 Pa was demonstrated for more than 1.5 million input cycles. A maximum torque of 3 N·m and an efficiency of 80% were demonstrated. The maximum tested input speed was 3000 rpm, six times the previous existing record for harmonic drives at cryogenic temperatures.
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