Frequency-Dependent Multiconductor Transmission Line Model With Collocated Voltage and Current Propagation

被引:24
|
作者
Marti, Jose R. [1 ]
Tavighi, Arash [1 ]
机构
[1] Univ British Columbia, Dept Elect & Comp Engn, Vancouver, BC V6T 1Z4, Canada
关键词
MTL equations; RMTL equations; collocation of voltage and current waves; real constant transformation matrix; frequency dependent line model (FDLM); frequency dependent transmission line models in the EMTP; ELECTROMAGNETIC TRANSIENTS; TRANSFORMATION-MATRICES; UNDERGROUND CABLES; GROUND RETURN; SIMULATION;
D O I
10.1109/TPWRD.2017.2691343
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper reviews the classical multiconductor transmission line (MTL) equations and proposes additional constraints on these equations. A fundamental physical constraint is that the voltage and current waves must be collocated and travel together with the same propagation function. Based on this condition, the Revised Multiconductor Transmission Line (RMTL) equations are proposed. As opposed to the classical MTL equations that require complex frequency-dependent transformation matrices for their diagonalization, the RMTL equations can be diagonalized very accurately using a single real constant transformation matrix. A new Frequency-Dependent Line Model (FDLM) is proposed based on the RMTL equations. FDLM is compared with the two most accepted frequency-dependent line models in the Electromagnetic Transients Program (EMTP): The JMARTI model (fdLine) that uses a constant transformation matrix as an approximation, and the phase-coordinates Universal Line Model (ULM) that fits the frequency dependence of the transformation matrices. These time-domain models are compared with a reference frequency-domain solution for a double-circuit vertical line.
引用
收藏
页码:71 / 81
页数:11
相关论文
共 50 条
  • [31] A Method for the Calculation of Frequency-Dependent Transmission Line Transformation Matrices
    Fan, Shengtao
    2011 IEEE POWER AND ENERGY SOCIETY GENERAL MEETING, 2011,
  • [32] Lightning Current on the Frequency-Dependent Lumped Parameter Model Representing Short Transmission Lines
    Leon Colqui, Jaimis Sajid
    Carlos Timana, Luis
    Kurokawa, Sergio
    Justo De Araujo, Anderson Ricardo
    Pissolato Filho, Jose
    2021 35TH INTERNATIONAL CONFERENCE ON LIGHTNING PROTECTION (ICLP) AND XVI INTERNATIONAL SYMPOSIUM ON LIGHTNING PROTECTION (SIPDA), 2021,
  • [33] TRANSIENT ELECTROMAGNETIC RESPONSE OF FREQUENCY-DEPENDENT MULTICONDUCTOR UNDERGROUND CABLES
    Taheri, P.
    Kordi, B.
    2011 24TH CANADIAN CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (CCECE), 2011, : 625 - 629
  • [34] Fitting the frequency-dependent parameters in the Bergeron line model
    Caballero, Pablo Torrez
    Marques Costa, Eduardo C.
    Kurokawa, Sergio
    ELECTRIC POWER SYSTEMS RESEARCH, 2014, 117 : 14 - 20
  • [35] Extension of a modal-domain transmission line model to include frequency-dependent ground parameters
    De Conti, Alberto
    Emidio, Maique Paulo S.
    ELECTRIC POWER SYSTEMS RESEARCH, 2016, 138 : 120 - 130
  • [36] FREQUENCY-DEPENDENT CONDUCTIVITY AND CURRENT OPERATOR OF HUBBARD MODEL
    MARSCH, E
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1975, 72 (02): : K103 - K108
  • [37] Static, pulsed and frequency-dependent current/voltage characteristics of GaAs FETs
    Tellez, JR
    Stothard, BP
    AlDaas, M
    IEE PROCEEDINGS-CIRCUITS DEVICES AND SYSTEMS, 1996, 143 (03): : 129 - 133
  • [38] Systematic development of transmission line models for interconnects with frequency-dependent losses
    Coperich, K
    Morsey, J
    Okhmatovski, V
    Cangellaris, AC
    Ruehli, A
    ELECTRICAL PERFORMANCE OF ELECTRONIC PACKAGING, 2000, : 221 - 224
  • [39] Distance protection for HVDC transmission line considering frequency-dependent parameters
    Zhang, J. (zhangjk@nw.sgcc.com.cn), 1600, Automation of Electric Power Systems Press (36):
  • [40] Inclusion of frequency-dependent soil parameters in transmission-line modeling
    Siqueira de Lima, Antonio Carlos
    Portela, Carlos
    IEEE TRANSACTIONS ON POWER DELIVERY, 2007, 22 (01) : 492 - 499