Linear Induction Motors in Transportation Systems

被引:28
|
作者
Palka, Ryszard [1 ]
Woronowicz, Konrad [1 ]
机构
[1] West Pomeranian Univ Technol, Fac Elect Engn, Sikorskiego 37, PL-70313 Szczecin, Poland
关键词
linear induction motors; finite element analysis; end effect; EQUIVALENT-CIRCUIT MODEL; FIELD-ORIENTED CONTROL; MAGNETIC-FIELD; END-REGION; FORCE; COMPENSATION; OPTIMIZATION; PERFORMANCE; MACHINES; VEHICLES;
D O I
10.3390/en14092549
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
This paper provides an overview of the Linear Transportation System (LTS) and focuses on the application of a Linear Induction Motor (LIM) as a major constituent of LTS propulsion. Due to their physical characteristics, linear induction motors introduce many physical phenomena and design constraints that do not occur in the application of the rotary motor equivalent. The efficiency of the LIM is lower than that of the equivalent rotary machine, but, when the motors are compared as integrated constituents of the broader transportation system, the rotary motor's efficiency advantage diminishes entirely. Against this background, several solutions to the problems still existing in the application of traction linear induction motors are presented based on the scientific research of the authors. Thus, solutions to the following problems are presented here: (a) development of new analytical solutions and finite element methods for LIM evaluation; (b) comparison between the analytical and numerical results, performed with commercial and self-developed software, showing an exceptionally good agreement; (c) self-developed LIM adaptive control methods; (d) LIM performance under voltage supply (non-symmetrical phase current values); (e) method for the power loss evaluation in the LIM reaction rail and the temperature rise prediction method of a traction LIM; and (f) discussion of the performance of the superconducting LIM. The addressed research topics have been chosen for their practical impact on the advancement of a LIM as the preferred urban transport propulsion motor.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] TRANSIENT PERFORMANCE OF LINEAR INDUCTION MOTORS.
    Turner, D.R.
    Love, T.H.
    SAE Preprints, 1981,
  • [32] Pulsed linear induction motors for Maglev propulsion
    Davey, K
    IEEE TRANSACTIONS ON MAGNETICS, 2000, 36 (05) : 3791 - 3797
  • [33] TRANSVERSE EDGE EFFECTS IN LINEAR INDUCTION MOTORS
    PRESTON, TW
    REECE, ABJ
    PROCEEDINGS OF THE INSTITUTION OF ELECTRICAL ENGINEERS-LONDON, 1969, 116 (06): : 973 - &
  • [34] Neural identification and control for linear induction motors
    Benitez, VH
    Sanchez, EN
    Loukianov, AG
    JOURNAL OF INTELLIGENT & FUZZY SYSTEMS, 2005, 16 (01) : 33 - 55
  • [35] Pulsed linear induction motors in Maglev applications
    Davey, K
    IEEE TRANSACTIONS ON MAGNETICS, 2000, 36 (05) : 3703 - 3705
  • [36] Optimal design of HTS linear induction motors
    Zhao, Jia
    Zheng, Trillion Q.
    Zhang, Wei
    Fang, Jin
    Liu, Youmei
    Diangong Jishu Xuebao/Transactions of China Electrotechnical Society, 2011, 26 (06): : 33 - 38
  • [37] THE TRANSIENT PERFORMANCE OF LINEAR INDUCTION-MOTORS
    TURNER, DR
    LOYE, TH
    IEEE TRANSACTIONS ON POWER APPARATUS AND SYSTEMS, 1981, 100 (12): : 4958 - 4964
  • [38] FORCES IN LINEAR INDUCTION-MOTORS AT DISTURBANCES
    ODENDAHL, A
    SATTLER, PK
    ETZ ARCHIV, 1980, 2 (04): : 127 - 131
  • [39] LABORATORY EXERCISE ON LINEAR INDUCTION-MOTORS
    LEISTEN, JM
    JONES, DRGH
    HOBSON, L
    INTERNATIONAL JOURNAL OF ELECTRICAL ENGINEERING EDUCATION, 1987, 24 (02) : 101 - 113
  • [40] Speed Control of Double-Sided Linear Induction Motors for Automated Manufacturing Systems
    Caruso, M.
    Cipriani, G.
    Di Dio, V.
    Miceli, R.
    Spataro, C.
    2014 IEEE INTERNATIONAL ENERGY CONFERENCE (ENERGYCON 2014), 2014, : 33 - 38