earticle

논문검색

Stress analysis of high-temperature superconducting wire under electrical/magnetic/bending loads

초록

영어

The Second-generation high-temperature superconducting (HTS) Rare-Earth Barium Copper Oxide (REBCO) wire is a composite laminate having a multi-layer structure (8 or more layers). HTS wires will undergo multiple loads including the bendingtension loads during winding, high current density, and high magnetic fields. In particular, the wires are subjected to bending stress and magnetic field stress because HTS wires are wound around a circular bobbin when making a high-field magnetic. Each of the different laminated wires inevitably exhibits damage and fracture behavior of wire due to stress deformation, mismatches in thermal, physical, electrical, and magnetic properties. Therefore, when manufacturing high-field magnets and other applications, it is necessary to calculate the stress-strain experienced by high-temperature superconducting wire to present stable operating conditions in the product's use environment. In this study, the finite element model (FEM) was used to simulate the strain-stress characteristics of the HTS wire under high current density and magnetic field, and bending loads. In addition, the result of obtaining the neutral axis of the wire and the simulation result was compared with the theoretical calculation value and reviewed. As a result of the simulation using COMSOL Multiphysics, when a current of 100 A was applied to the wire, the current value showed the difference of 10-9. The stress received by the wire was 501.9 MPa, which showed a theoretically calculated value of 500 MPa and difference of 0.38% between simulation and theoretical method. In addition, the displacement resulted is 30.0012 μm, which is very similar to the theoretically calculated value of 30 μm. Later, the amount of bending stress by the circular mandrel was received for each layer and the difference with the theoretically obtained the neutral axis result was compared and reviewed. This result will be used as basic data for manufacturing high-field magnets because it can be expanded and analyzed even in the case of wire with magnetic flux pinning.

목차

Abstract
1. 서론
2. 모델링 설계 및 유한요소 해석
2.1. 모델링
2.2. 초전도 선재의 유한요소 법 해석
2.3. 초전도 선재의 자기장 및 전기장에서의 응력 해석
2.4. 초전도 선재의 구조 해석
3. 결론
ACKNOWLEDGMENT
REFERENCES

저자정보

  • Dongjin Seo Department of Carbon Convergence Engineering and Institute of Carbon Technology, Jeonju University, Jeonju, 55069, Korea
  • Yunjo Jung Department of Carbon Convergence Engineering and Institute of Carbon Technology, Jeonju University, Jeonju, 55069, Korea
  • Hong-Gun Kim Department of Carbon Convergence Engineering and Institute of Carbon Technology, Jeonju University, Jeonju, 55069, Korea
  • Hyung-Seop Shin Department of Mechanical Design Engineering, Andong National University, Andong, 36729, Korea
  • Young-Soon Kim Department of Carbon Convergence Engineering and Institute of Carbon Technology, Jeonju University, Jeonju, 55069, Korea

참고문헌

자료제공 : 네이버학술정보

    함께 이용한 논문

      ※ 기관로그인 시 무료 이용이 가능합니다.
      ※ 학술발표대회집, 워크숍 자료집 중 4페이지 이내 논문은 '요약'만 제공되는 경우가 있으니, 구매 전에 간행물명, 페이지 수 확인 부탁 드립니다.

      • 4,000원

      0개의 논문이 장바구니에 담겼습니다.