• DocumentCode
    3784679
  • Title

    High-temperature sag model for overhead conductors

  • Author

    S.L. Chen;W.Z. Black;M.L. Fancher

  • Author_Institution
    Cordis Corp., Miami Lakes, FL, USA
  • Volume
    18
  • Issue
    1
  • fYear
    2003
  • Firstpage
    183
  • Lastpage
    188
  • Abstract
    As electric utilities strive to operate their transmission lines at higher temperatures, several constraints exist that make this goal difficult to achieve. Load may not flow over a desired path, even though the transmission line may have sufficient thermal capacity. Even if system components that allow power to flow over selected circuits are available and in place, there is still an absolute thermal limit placed on an aluminum conductor to prevent annealing of the conductor and excessive sag. This paper describes the combination of a real-time ampacity and a sag/tension program resulting in both a design and operational tool that can be used to predict the instantaneous temperature and sag of a wide variety of conductor designs. The resulting program is specifically designed to predict conductor temperature and sag for temperatures as high as 250/spl deg/C. The accuracy of the program is evaluated by comparing the predicted sag with the sag measured on two ACSR conductors mounted on a full-scale outdoor test facility. The accuracy of the predicted sag decreases as the average conductor temperature increases. For temperatures less than 150/spl deg/C, nearly 70% of the time the sag program predicted sags within about 5% of measured values. However, when the conductor temperature was greater than 150/spl deg/C, the predicted sags were within 5% of the measured values only about 65% of the time.
  • Keywords
    "Conductors","Temperature","Power transmission lines","Distributed parameter circuits","Time measurement","Power system modeling","Power industry","Thermal loading","Thermal conductivity","Aluminum"
  • Journal_Title
    IEEE Transactions on Power Delivery
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/TPWRD.2002.801427
  • Filename
    1159916