A General Voltage-Behind-Reactance Formulation of a Multivoltage n x 3-Phase Hybrid-Excited Synchronous Machine

被引:6
作者
Gradev, Stanko [1 ,2 ]
Reuss, Joerg [1 ]
Herzog, Hans-Georg [2 ]
机构
[1] BMW Grp, D-80788 Munich, Germany
[2] Tech Univ Munich, D-80939 Munich, Germany
关键词
n x 3-phase synchronous machine; multi-voltage machine; voltage-behind reactance; MAGNETIC SATURATION; EFFICIENT; SIMULATION; MODEL;
D O I
10.1109/TEC.2016.2597258
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The paper describes a general model of a hybrid-excited synchronous machine with multiple voltage levels each generated by a 3-phase stator system in a voltage-behind-reactance formulation. The different voltage level of each 3-phase stator system is realized in the same machine design. The rotor is excited through an excitation winding and a permanent magnet. The model incorporates magnetic saturation of the main inductance, magnetic and electric coupling between all phases, and the field winding and a mechanical displacement angle. The cross coupling between q and d axes of the main inductances is included as a constant saliency factor a for all saturation levels. The turn ratio of each 3-phase stator winding system to another 3-phase system is also modeled as a constant value. Each 3-phase system saturates the iron core with a different weighting represented by the number of turns relative to the reference stator system. The proposed model is included in a field-oriented control scheme. Simulations are carried out with requested I-q,I-d and field winding currents to demonstrate model's dynamics, and the results are verified with measurements on a test bench.
引用
收藏
页码:1452 / 1461
页数:10
相关论文
共 14 条
  • [1] Aliprantis DC, 2005, IEEE T ENERGY CONVER, V20, P584, DOI 10.1109/TEC.2005.845455
  • [2] A voltage-behind-reactance synchronous machine model with saturation and arbitrary rotor network representation
    Aliprantis, Dionysios C.
    Wasynczuk, Oleg
    Valdez, Carlos D. Rodriguez
    [J]. IEEE TRANSACTIONS ON ENERGY CONVERSION, 2008, 23 (02) : 499 - 508
  • [3] Amiri Navid, 2015, 2015 IEEE Power & Energy Society General Meeting, P1, DOI 10.1109/PESGM.2015.7286439
  • [4] An improved method for incorporating magnetic saturation in the Q-D synchronous machine model
    Corzine, KA
    Kuhn, BT
    Sudhoff, SD
    Hegner, HJ
    [J]. IEEE TRANSACTIONS ON ENERGY CONVERSION, 1998, 13 (03) : 270 - 275
  • [5] Synchronous Machine Model With Voltage-Behind-Reactance Formulation of Stator and Field Windings
    Cramer, Aaron M.
    Loop, Benjamin P.
    Aliprantis, Dionysios C.
    [J]. IEEE TRANSACTIONS ON ENERGY CONVERSION, 2012, 27 (02) : 391 - 402
  • [6] Emadi A., 2005, SERIES ELECT COMPUTE, P17
  • [7] Gradev S, 2014, 2014 INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), P672, DOI 10.1109/ICELMACH.2014.6960253
  • [8] Levi E, 2000, IEEE T ENERGY CONVER, V15, P224, DOI 10.1109/60.867004
  • [9] Manual P., 2015, SIMULATION PLATFORM
  • [10] An efficient multirate simulation technique for power-electronic-based systems
    Pekarek, SD
    Wasynczuk, O
    Walters, EA
    Jatskevich, JV
    Lucas, CE
    Wu, N
    Lamm, PT
    [J]. IEEE TRANSACTIONS ON POWER SYSTEMS, 2004, 19 (01) : 399 - 409