원문정보
초록
영어
In order to obtain ultra-high resolution MRI images, research and development of 11 T or higher superconducting magnets have been actively conducted in the world, recently. The high-temperature superconductor (HTS), first discovered in 1986, was very limited in industrial application until mid-2010, despite its high critical current characteristics in the high magnetic field compared to the low-temperature superconductor. This is because HTS magnets were unable to operate stably due to the thermal damage when a quench occurred. With the introduction of no-insulation (NI) HTS magnet winding technology that does not burn electrically, it could be expected that the HTS magnets are dramatically reduced in weight, volume, and cost. In this paper, a 6 T-class NI HTS magnet for basic characteristic analysis was designed, and a distributed equivalent circuit model of the NI coils was configured to analyze the charging current characteristics caused by excitation current, and the charge delay phenomenon and loss were predicted through the development of a simulation model. Additionally, the critical current of the NI HTS magnets was estimated, considering the magnetic field, its angle and temperature with a given current. The loss due to charging delay characteristics was analyzed and the result was shown. It is meaningful to obtain detailed operation technology to secure a stable operation protocol for a 6T NI HTS magnet which is actually manufactured.
목차
1. 서론
2. 무절연 초전도 자석의 등가회로 모델링
2.1. 등가회로 모델 구성
2.2. 등가회로 지배방정식 도출
3. 6 T급 고온초전도 자석 설계
3.1. 6 T급 NI HTS 자석 설계사양
3.2. 6 T급 고온초전도 자석 FEM 해석모델 개발
3.3. 6 T급 NI HTS 자석 임계 전류 예측
4. 6 T 급 고온초전도 자석 여자특성 분석
4.1. 접촉저항에 따른 각 코일 별 충전지연 특성 분석
4.2. 접촉저항에 따른 유출전류에 의한 코일의 열손실특성 분석
4.3. 접촉저항 및 전류 입력속도 변화에 따른 손실특성 분석
5. 결론
ACKNOWLEDGMENT
REFERENCES