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논문검색

Effects of surface-roughness and -oxidation of REBCO conductor on turn-to-turn contact resistance

초록

영어

The electrical/thermal stabilities and magnetic field controllability of a no-insulation (NI) high-temperature superconducting magnet are characterized by contact resistance between turn-to-turn layers, and the contact resistance characteristics are determined by properties of conductor surface and winding tension. In order to accurately predict the electromagnetic characteristics of the NI coil in a design stage, it is necessary to control the contact resistance characteristics within the design target parameters. In this paper, the contact resistance and critical current characteristics of a rare-earth barium copper oxide (REBCO) conductor were measured to analyze the effects of surface treatment conditions (roughness and oxidation level) of the copper stabilizer layer in REBCO conductor. The test samples with different surface roughness and oxidation levels were fabricated and conductor surface analysis was performed using scanning electron microscopes, alpha step surface profilers and energy dispersive X-ray spectroscopy. Moreover, the contact resistance and critical current characteristics of the samples were measured using the four-terminal method in a liquid nitrogen impregnated cooling environment. Compared with as-received REBCO conductor sample, the contact resistance values of the REBCO conductors, which were post-treated by the scratch and oxidation of the surface of the copper stabilizer layer, tended to increase, and the critical current values were decreased under certain roughness and oxidation conditions.

목차

Abstract
1. 서론
2. REBCO 도체의 표면 분석
2.1. 분석 시료 제작
2.2. 표면처리 조건에 따른 표면 상태 분석
3. REBCO 도체의 전기적 특성 분석
3.1. 표면처리 조건에 따른 접촉저항
3.2. 표면처리 조건에 따른 임계 전류 측정
4. 결론
ACKNOWLEDGMENT
REFERENCES

저자정보

  • Y. S. Chae Department of Electrical Engineering, Jeju National University, Jeju, South Korea
  • H. M. Kim Department of Electrical Engineering, Jeju National University, Jeju, South Korea
  • Y. S. Yoon Department of Electrical Engineering, Shin Ansan University, Ansan, South Korea
  • T. W. Kim Material Technology Center, Korea Testing Laboratory, Ansan, South Korea
  • J. H. Kim Electric Energy Research Center, Jeju National University, Jeju, South Korea
  • S. H. Lee Electric Energy Research Center, Jeju National University, Jeju, South Korea

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