DocumentCode :
1100410
Title :
Calculating the coupling factor in a multilayer coaxial transformer with air core
Author :
Lindblom, Adam ; Isberg, Jan ; Bernhoff, Hans
Author_Institution :
Div. for Electricity & Lightning Res., Uppsala Univ., Sweden
Volume :
40
Issue :
5
fYear :
2004
Firstpage :
3244
Lastpage :
3248
Abstract :
High-voltage transformers can be built with coaxial transmission lines. This paper describes a transformer design that uses the coaxial screen as primary winding and the inner conductor as secondary. An advantage of transmission line transformers is that the insulation problem is solved and the construction can be kept simple; the coupling between the primary and secondary coils is high even though the transformer uses an air core. The air core brings another advantage: the capacity to store large quantities of magnetic energy. The combination of a high coupling factor and large energy storage capacity makes this transformer ideal for charging high-voltage capacitors fast. The winding type for the transformer is alternating Archimedean spirals. Here, we present a magnetic field analysis of the transformer´s primary, secondary, and mutual inductance using a finite-element solver. We compare the measured magnetic flux density versus the calculated value. The step-up winding ratio of the transformer influences the coupling factor marginally if the construction has an even number of spiral layers for each set of windings. However, the result from the finite-element solver predicts a drop in coupling factor if the step-up transformer construction has an odd number of spiral layers. The copper conductors used in the transformer resemble isotropic copper pipes.
Keywords :
conductors (electric); current transformers; electromagnetic induction; finite element analysis; magnetic flux; magnetic multilayers; magnetisation; transformer cores; transformer insulation; transformer windings; alternating Archimedean spirals; coaxial screen; coaxial transmission lines; copper conductors; coupling factor; fast high-voltage capacitors charging; finite-element method; finite-element solver; high-voltage transformers; inner conductor; insulation problem; isotropic copper pipes; large energy storage capacity; magnetic energy; magnetic field analysis; magnetic flux density; multilayer coaxial transformer; mutual inductance; primary conductance; primary winding; secondary conductance; secondary winding; step-up transformer construction; step-up winding ratio; transformer design; transmission line transformers; Coaxial components; Conductors; Couplings; Magnetic cores; Magnetic field measurement; Nonhomogeneous media; Power transformer insulation; Spirals; Transformer cores; Transmission lines; Air core; FEM; coupling factor; finite-element method; transformer; transmission line;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2004.833425
Filename :
1333133
Link To Document :
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