Study of the magnetization loss of CORC <sup>®</sup> cables using a 3D T-A formulation

Исследование потерь на намагничивание в кабелях CORC® с использованием 3D формулировки T–A
Yawei Wang, Min Zhang, Weijia Yuan, Francesco Grilli, Zixuan Zhu
2018-11-12

3D T-A formulationCORC cablesfinite element modellingmagnetization lossestape striation
Abstract A Conductor on Round Core (CORC ® ) cable wound with a high temperature superconductor is an important cable concept for high current density applications. The design of a CORC cable makes understanding its electromagnetic performance—for example its AC losses—challenging. This paper presents a thorough study of CORC cables by combining experimental and numerical methods. In particular, it focuses on understanding how the cable structure influences the magnetization losses and on how these can be reduced. A novelty of this paper lies in the use of a new T-A formulation, which, for the first time, is employed for three-dimensional modelling of a CORC cable with real geometry. The use of the new T-A formulation in finite element software enables the study of how the winding direction and multiple-layer structure affect the magnetization losses of CORC cables. Moreover, influence of striation in CORC cables is studied as an effective way to reduce their losses. A CORC cable with striated tapes shows a significant magnetization loss reduction at high magnetic fields, in comparison to its counterpart without striated tapes. At low magnetic fields, tape striation leads to an increase in loss when the number of filaments is low, then the loss drops with a further increase in the number of filaments, but this loss reduction is much weaker than that at high fields. This paper provides an efficient tool for investigating the electromagnetic behaviour of CORC cables, which can provide valuable guidance in designing CORC cables with minimized losses for high energy physics and energy conversion applications.
1
A new T-A formulation is used for the first time to perform three-dimensional finite-element modelling of CORC cables with real geometry.
2
At low magnetic fields, tape striation can increase losses when filament count is low; increasing filament count then reduces loss but less effectively than at high fields.
3
Experimental and numerical analysis show tape striation significantly reduces magnetization losses of CORC cables at high magnetic fields.
4
The 3D T-A formulation enables study of how winding direction and multi-layer structure influence CORC cable magnetization losses.
5
The presented modelling tool efficiently investigates electromagnetic behavior and can guide CORC cable designs to minimize losses for high-energy physics and energy conversion applications.

Conductor on Round Core (CORC®) cable with real winding geometry (including multi-layer structure, winding direction, and striated tapes)

Magnetization (AC) losses of CORC cables and how cable structure (winding direction, multi-layer arrangement, and tape striation) influences and can reduce these losses, studied via 3D T-A formulation modeling and experiments

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2018-11-12
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Yawei Wang
Min Zhang
Weijia Yuan
Francesco Grilli
Zixuan Zhu
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