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Modeling method for power electronic system based on Hamilton principle of analytical mechanics

  • Yuanbo Guo*
  • , Hongjun Chen
  • , Wei Chen
  • , Xiaohua Zhang
  • *Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Traditional modeling method for power electronic system is limited in application and strictly depends on system topology structure. Therefore, utilizing the analogical relation of physical quantities between mechanical system and power electronic system, this paper presents a modeling method based on Hamilton principle of analytical mechanics for power electronic system. The method is not only more systematic, but also has clear physical concept and wide application range towards the above disadvantages existing in the traditional modeling method. Meanwhile, the paper illustrates this modeling procedure, taking three-phase voltage-source PWM rectifier which has wide application in the power electronic field as an example. Moreover, design method of power electronic system controller based on Hamilton principle is presented and has been experimentally verified for PWM rectifier since it is convenient to design the system controller in terms of energy using the Hamilton modeling method. Simulation experiment results show that the designed PWM rectifier control system has better steady and dynamic performance.

Original languageEnglish
Title of host publication2009 IEEE 6th International Power Electronics and Motion Control Conference, IPEMC '09
Pages988-992
Number of pages5
DOIs
StatePublished - 2009
Event2009 IEEE 6th International Power Electronics and Motion Control Conference, IPEMC '09 - Wuhan, China
Duration: 17 May 200920 May 2009

Publication series

Name2009 IEEE 6th International Power Electronics and Motion Control Conference, IPEMC '09

Conference

Conference2009 IEEE 6th International Power Electronics and Motion Control Conference, IPEMC '09
Country/TerritoryChina
CityWuhan
Period17/05/0920/05/09

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