• DocumentCode
    1339222
  • Title

    Calculation of spatial loss distribution in stacked power and distribution transformer cores

  • Author

    Mechler, Günther F. ; Girgis, Ramsis S.

  • Author_Institution
    ABB Corp. Res., Heidelberg, Germany
  • Volume
    13
  • Issue
    2
  • fYear
    1998
  • fDate
    4/1/1998 12:00:00 AM
  • Firstpage
    532
  • Lastpage
    537
  • Abstract
    This paper describes an analytical solution to use a generic 2D finite difference method to accurately calculate the quasi 3D spatial distribution, components, and total core losses in transformer cores. The solution takes into account: (1) magnetic anisotropy and nonlinearity of the core material; (2) all components of iron losses of the core material, including losses in directions other than the rolling direction; and (3) joint model and localized losses due to the distorted flux distribution in the joint regions (due to core gaps) across the core-stack. The results are used to: (1) calculate very accurately the total core losses of a transformer at the design stage every time, for all core materials, at all operating inductions, for all core geometries, for both 50 Hz and 60 Hz; (2) understand the contribution of cross losses, harmonics, and joints to the total losses of a core; (3) evaluate the impact of various joint attributes, such as, type of joint, number of steps, number of laminations per step, size of gaps, and lamination thickness on the total performance of the core; and (4) improve the core loss performance of transformers by optimizing core design and core material parameters. This paper presents the analysis as applied to 3-phase, 3-limb cores. The paper also presents the results of the extensive experimental/test verification performed on a number of model cores in the lab as well as on a large number of actual commercial transformer cores with excellent agreements. The results have been used to calculate core losses of stacked power and distribution transformers with consistent accuracy
  • Keywords
    finite difference methods; harmonics; laminations; magnetic anisotropy; magnetic flux; magnetic leakage; power transformers; transformer cores; 3-phase 3-limb cores; core loss performance improvement; core material nonlinearity; cross losses; distorted flux distribution; distribution transformer cores; gap size; generic 2D finite difference method; harmonics; iron losses; joint attributes; joint model; lamination thickness; laminations; localized losses; magnetic anisotropy; operating inductions; quasi 3D spatial distribution; rolling direction; spatial loss distribution; stacked power transformer cores; total core losses; Core loss; Finite difference methods; Joining materials; Lamination; Magnetic analysis; Magnetic anisotropy; Magnetic cores; Magnetic materials; Performance loss; Transformer cores;
  • fLanguage
    English
  • Journal_Title
    Power Delivery, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/61.660925
  • Filename
    660925