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Finite element analysis of current flowing patterns and AC loss in the multifilament strand

Authors :
Yuanwen Gao
Wurui Ta
Yingxu Li
Source :
Physica C: Superconductivity. 495:118-125
Publication Year :
2013
Publisher :
Elsevier BV, 2013.

Abstract

Intrinsic current flow and field distribution scheme under the imposed low current injection and the applied weak field is meaningful to interpret Ic degradation and AC loss in a strand that performs as a normal composite conductor. A 2D finite element (FE) transport model is built in COMSOL to identify the various transverse resistance components and reveal the interrelation among them. Then the transverse resistivity components are taken as the basic electrical components in a 3D composite strand model. The 3D model follows the realistic trajectories of twisted filaments in strand composite and experimental material properties. To address the potential/current map in the stationary transport, the FE model is thoroughly analyzed for the short-sample and long-sample strand, imposed by two in-plane steady current injections and a potential boundary condition at one strand end with the other end grounded, respectively. The results show that the short-sample longitudinal current is uniform with little resistivity loss, and flows from the positive source and converges to the negative one in the cross section with different paths and current proportions between filaments and matrix. However, for the long-sample, there is a serious reduction in electric potential along the strand axis and the currents mostly concentrate on filaments. The time-varying problem is also implemented by computing AC loss induced by a relatively far-away alternating line current. It is discussed where appropriate that the effect of the twist pitch and contact resistivity on the pattern and magnitude of the current flow and AC loss.

Details

ISSN :
09214534
Volume :
495
Database :
OpenAIRE
Journal :
Physica C: Superconductivity
Accession number :
edsair.doi...........05d6f6621ae3914e32aa7183f480c72a
Full Text :
https://doi.org/10.1016/j.physc.2013.09.001