• DocumentCode
    269464
  • Title

    Instantaneous Power Balance in Finite-Element Simulation of Electrical Machines

  • Author

    Rasilo, Paavo ; Perkkiö, Lauri ; Hannukainen, Antti ; Silwal, Bishal ; Eirola, Timo ; Arkkio, Antero

  • Author_Institution
    Dept. of Electr. Eng., Aalto Univ., Aalto, Finland
  • Volume
    50
  • Issue
    5
  • fYear
    2014
  • fDate
    May-14
  • Firstpage
    1
  • Lastpage
    7
  • Abstract
    Conservation of power in time-stepping finite-element (FE) simulation of electrical machines is studied. We propose a method for accurately obtaining the instantaneous time derivative of the FE solution, from which the instantaneous eddy-current losses and the rate-of-change of the magnetic field energy are calculated. The method is shown to be consistent with different time-integration schemes, unlike the typically used backward-difference (BWD) approximation, which is only accurate if the BWD method is also used for the time integration. We first formulate the FE equations for a locked-rotor induction machine as a differential-algebraic equation (DAE) system. An approach called the collocation method is then used to derive the BWD, trapezoidal (TR), and implicit midpoint integration rules in order to show how these methods approximate the solution in time. We then differentiate the constraint equations of the DAE to form a system from which the time derivative of the solution can be solved. The obtained derivative is shown to satisfy the power balance exactly in the collocation points. In case of the TR rule, the losses calculated with the proposed method are shown to be less sensitive to the time-step length than ones obtained with the BWD approximation for the time derivatives. The collocation approach also allows studying the power balance continuously during the time step.
  • Keywords
    asynchronous machines; differential algebraic equations; eddy current losses; electric machines; energy conservation; finite element analysis; magnetic fields; rotors; BWD approximation; DAE system; backward-difference approximation; collocation method; constraint equations; differential-algebraic equation; eddy-current losses; electrical machines; finite element simulation; implicit midpoint integration rules; instantaneous power balance; locked-rotor induction machine; magnetic field energy; power conservation; time derivative; time integration; trapezoidal integration rules; Approximation methods; Equations; Iron; Mathematical model; Rotors; Stator windings; Collocation method; eddy currents; electrical machines; field energy; finite element (FE) methods; finite element methods; power balance;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2013.2294945
  • Filename
    6697860