recordSynchron_el

Synchronous machine parameters

Extends from Synchron3rd_el (Synchronous machine 3rd order parameters).

Information

Equivalent circuit on diagram layer!

Specifying standard transient data both for _d and _q axis:

  - for first order write

  xtr = {0.4}   for  xtr'  = 0.4,  no xtr''
  tc  = {1.3}   for   tc'  = 1.3,   no tc''
  and
  xtr = {0.26}  for  xtr'' = 0.26,  no xtr'
  tc  = {0.06}  for   tc'' = 0.06,   no tc'

  - for second order write

  xtr = {0.4, 0.24}  for  xtr' = 0.4, xtr'' = 0.24
  tc  = {1.3, 0.04}  for   tc' = 1.3,  tc'' = 0.04

and analogous for higher order.

Sign of field current i_f:
Mathematical conventions (Z-matrix) are used for formulas in package 'Precalculation'.
Experimental conventions (if0_deg) choose the inverse sign for the field-current.
Therefore we have to use the following definition for the phase-angle of i_f:

  alpha_if0 = (if0_deg + 180)*pi/180

If the induced field-current values are not available and for pm-excitation the d-axis is treated according to the q-axis scheme (without xm_d).

Specifying equivalent circuit data:

    xsig_f, r_f, xsig_Q, r_Q correspond to a stator-based equivalent circuit.
    The number of components of xsig_r, r_r depends on the order of the model.
    For pu-input refer to stator base value R_base.

Relation rotor resistance of field winding to stator-based equivalent circuit data:

  If_base = (x_d - xsig_s)*If_nom, (x_d, xsig_s in pu)
  Rf_base = P_nom/If_base^2
  rf =  Rf/Rf_base                (in pu, stator-based).
  rf = (Rf/Rf_base)*R_base        (in SI, stator-based).
  Rf = resistance field winding   (in Ohm, true value, not scaled)

Parameters

TypeNameDefaultDescription
Booleanneu_iso (from Synchron3rd_el)falseisolated neutral if Y
Integerpp (from Synchron3rd_el)1pole-pair number
Integerexcite (from Synchron3rd_el)1excitation (1:el)
SIpu.MagneticFluxpsi_pm (from Synchron3rd_el)0magnetisation (V/V_nom at open term at omega_nom)
SIpu.Reactancex_d (from Synchron3rd_el)1.9syn reactance d-axis
SIpu.Reactancex_q (from Synchron3rd_el)1.77syn reactance q-axis
SIpu.Reactancex_o (from Synchron3rd_el)0.1reactance o-axis
SIpu.Resistancer_s (from Synchron3rd_el)0.005resistance armature
SIpu.Resistancer_n (from Synchron3rd_el)1resistance neutral to grd (if Y)
BooleantransDattrueuse transient data?
Booleanuse_xtrtrueuse x_transient and t_closed?
SIpu.Reactancextr_d{0.33, 0.25}trans reactance d-axis {xtr_d', xtr_d'', ..}
SIpu.Reactancextr_q{0.44, 0.27}trans reactance q-axis {xtr_q', xtr_q'', ..}
SI.Timetc_d{0.86, 0.025}time constant closed-loop d-axis {tc_d', tc_d'', ..}
SI.Timetc_q{0.25, 0.04}time constant closed-loop q-axis {tc_q', tc_q'', ..}
SI.Timeto_d{4.9898, 0.032747}time constant open-loop d-axis {to_d', to_d'', ..}
SI.Timeto_q{1.0867, 0.060327}time constant open-loop q-axis {to_q', to_q'', ..}
Booleanuse_if0trueinduced field current and phase available?
SIpu.Currentif00.85induced field current at v_s=Vnom/0deg
SIpu.Angle_degif0_deg-100angle(if0) at v_s=Vnom/0deg (sign: i_f behind v_s)
Realtol1e-6tolerance precalculation
SIpu.Reactancexsig_s0.17leakage reactance armature
SIpu.Reactancexsig_rd{0.135194, 0.0365214}leakage reactance rotor d-axis {f, D, ..}
SIpu.Reactancexsig_rq{0.407386, 0.144502}leakage reactance rotor q-axis {Q1, ..}
SIpu.Reactancexm_d{0.0555125}coupling-reactance d-axis {xm1, ..}
SIpu.Resistancer_rd{1.32139e-3, 14.376e-3}resistance rotor d-axis {f, D, ..}
SIpu.Resistancer_rq{7.38411e-3, 19.7148e-3}resistance rotor q-axis {Q1, ..}
Nominal
Base.Types.Unitsunits (from Nominal)Types.puSI | pu
SI.VoltageV_nom (from Nominal)1nom Voltage (= base if pu)
SI.ApparentPowerS_nom (from Nominal)1nom Power (= base if pu)
SI.Frequencyf_nom (from NominalDataAC)50nom frequency
SI.CurrentIf_nom1nom field current (V=V_nom at open term)