DocumentCode :
722157
Title :
Minimization of detent force in a 1 kW linear permanent magnet generator for the conversion of sea waves energy: Numerical and experimental validation
Author :
Trapanese, M. ; Cipriani, G. ; Curto, D. ; Di Dio, V. ; Franzitta, V. ; Viola, A.
Author_Institution :
DEIM, Univ. di Palermo, Palermo, Italy
fYear :
2015
fDate :
11-15 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
Linear permanent magnet generators are widely considered for the direct conversion of energy contained in sea waves. Both planar and tubular structures have been proposed and all these structures present several advantages: relative high efficiency, simplicity of the structures, high sturdiness. However, as all other linear machines they present some drawbacks: oscillations in the movement, distortion in the generated electromotive force (emf), etc. In this paper we focus our attention on the parasitic oscillations of the translator which are caused by the presence of a high detent force. Detent force is generated by the fact that magnetic energy presents a minimum when the length of the magnetic flux lines reaches a minimum. Detent force can reach high values and can reduce the quality of emf generated and the reliability of the machine. Thanks to a 3D FEM simulator, we have studied its behavior in a multiphysics approach and we have studied several possible designs. For the sake of the simplicity of this digest, we skip the details of the preliminary sizing of the generator, that essentially consisted in the maximization of the force that can be experienced by the translator at maximum electrical loading for the maximum sea wave speed.
Keywords :
direct energy conversion; electric potential; finite element analysis; linear machines; magnetic flux; minimisation; ocean waves; permanent magnet generators; permanent magnets; reliability; 3D FEM simulator; detent force minimization; direct energy conversion; electromotive force quality; force maximization; linear permanent magnet generator; machine reliability; magnetic energy; magnetic flux line length; maximum electrical loading; maximum sea wave speed; multiphysics approach; planar structure; power 1 kW; sea wave energy conversion; translator parasitic oscillations; tubular structure; Distortion; Force; Generators; Magnetic flux; Minimization; Oscillators; Permanent magnet generators;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
Type :
conf
DOI :
10.1109/INTMAG.2015.7157482
Filename :
7157482
Link To Document :
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