• Title/Summary/Keyword: winding-coil peak temperature

Search Result 3, Processing Time 0.024 seconds

Cooling System for Power Transformer Using Weighting Function (하중함수를 이용한 전력용 변압기 냉각 시스템)

  • Cho, Do-Hyeoun
    • 전자공학회논문지 IE
    • /
    • v.49 no.2
    • /
    • pp.40-45
    • /
    • 2012
  • In this paper, cooling system of power transformers is proposed for temperature optimized control. We predict the peak temperature of power transformer coils using load factors and construct a cooling system using weighting function. For the optimized temperature control for power transformer, a correlation function based on the load factor of a load current and the each temperatures for winding coils, for air and for oil is presented to predict the winding-coil peak temperature. Also, the results controlled by applying the power transformer is presented.

Development of 13.2kV/630A High-Tc Superconducting Fault Current Limiting Coil (13.2kV/630A급 고온초전도 한류코일 개발)

  • Lee, Chan-Joo;Kang, Hyoung-Ku;Nam, Kwan-Woo;Ko, Tae-Kuk;Seok, Bok-Yeol
    • Proceedings of the KIEE Conference
    • /
    • 2007.07a
    • /
    • pp.943-944
    • /
    • 2007
  • In this paper, the development and the test of 13.2kV/630A high-Tc superconducting fault current limiting coil are described. The fault current limiting coil made of Coated Conductor (CC) was fabricated with bifilar winding method for non-inductive characteristics and tested in the distribution power system level in Dec. 2006. In order to determine the length of the superconducting coil, applied voltage per unit length(V/m) was studied analytically and it was verified through experiments. For the volume minimization, the coil was designed with concentrical arrangement method. The short-circuit test was performed with the prospective fault current of asymmetrical 10kA whose maximum fault current was $30kA_{peak}$. In the test, the voltage drop and the current of the coil were measured and the resistance of the coil was obtained. Also, the temperature rise of the coil was calculated with the relationship between the resistance and the temperature of CC. In this paper, the experimental results are analyzed and compared with the simulation.

  • PDF

Key parameters of toroidal HTS coil for a superconducting magnetic energy storage system

  • Miyeon, Yoon;Jinwoo, Han;Ji-Kwang, Lee;Kyeongdal, Choi;Jung Tae, Lee;Seungyong, Hahn;Woo-Seok, Kim
    • Progress in Superconductivity and Cryogenics
    • /
    • v.24 no.4
    • /
    • pp.50-54
    • /
    • 2022
  • High temperature superconducting (HTS) magnets for large-capacity energy storage system need to be composed of toroid magnets with high energy density, low leakage magnetic fields, and easy installation. To realize such a large capacity of a toroid HTS magnet, an HTS cable with large current capacity would be preferred because of the limited DC link voltage and instantaneous high power required for compensation of the disturbance in the power grid. In this paper, the optimal operating strategies of the SMES for peak load reduction of the microgrid system were calculated according to the load variation characteristics, and the effect of compensation of the frequency change in microgrid with a SMES were also simulated. Based on the result of the simulation, key design parameters of SMES coil were presented for two cases to define the specification of the HTS cable with large current capacities for winding of HTS toroid coils, which will be need for development of the HTS cable as a future work.