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Combined magnetic vector-scalar potential finite element computation of 3D magnetic field and performance of modified Lundell alternators in Space Station applicationsA method of combined use of magnetic vector potential (MVP) based finite element (FE) formulations and magnetic scalar potential (MSP) based FE formulations for computation of three-dimensional (3D) magnetostatic fields is developed. This combined MVP-MSP 3D-FE method leads to considerable reduction by nearly a factor of 3 in the number of unknowns in comparison to the number of unknowns which must be computed in global MVP based FE solutions. This method allows one to incorporate portions of iron cores sandwiched in between coils (conductors) in current-carrying regions. Thus, it greatly simplifies the geometries of current carrying regions (in comparison with the exclusive MSP based methods) in electric machinery applications. A unique feature of this approach is that the global MSP solution is single valued in nature, that is, no branch cut is needed. This is again a superiority over the exclusive MSP based methods. A Newton-Raphson procedure with a concept of an adaptive relaxation factor was developed and successfully used in solving the 3D-FE problem with magnetic material anisotropy and nonlinearity. Accordingly, this combined MVP-MSP 3D-FE method is most suited for solution of large scale global type magnetic field computations in rotating electric machinery with very complex magnetic circuit geometries, as well as nonlinear and anisotropic material properties.
Document ID
19930014026
Acquisition Source
Legacy CDMS
Document Type
Thesis/Dissertation
Authors
Wang, Ren H.
(Clarkson Univ. Potsdam, NY, United States)
Date Acquired
September 6, 2013
Publication Date
February 27, 1991
Subject Category
Communications And Radar
Report/Patent Number
NASA-CR-192348
NAS 1.26:192348
Report Number: NASA-CR-192348
Report Number: NAS 1.26:192348
Accession Number
93N23215
Funding Number(s)
CONTRACT_GRANT: NAG3-818
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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