• DocumentCode
    649507
  • Title

    Generation of electro-thermal models of integrated power electronics modules using a novel synthesis technique

  • Author

    Greco, Giuseppe ; Vinci, Giovanni ; Raciti, Angelo ; Cristaldi, Davide

  • Author_Institution
    STMicroelectron., Catania, Italy
  • fYear
    2013
  • fDate
    25-27 Sept. 2013
  • Firstpage
    216
  • Lastpage
    221
  • Abstract
    In recent years, the development of electronic systems that make use of high-rate power circuitry is increasingly frequent also for markets going beyond the typical industrial sector. So, the implementation of efficient electronic modules aimed at converting power, in ambits such as renewable energy equipment or hybrid-electric vehicle motor drives, represents a new challenge for designers. Often, the amount of power to be managed is very significant and no rarely it exceeds tens of kW. In this context, new concepts for manufacturing power converters are emerging and Integrated Power Electronics Modules (IPEM) represent a solution which guarantees better performances. The design of applications exploiting IPEM concept requires multi-domains simulation models able to predict the thermal behaviour of the module according to its electrical performances. In this work, a new methodology aimed at automatizing the synthesis of PSpice-like models able to reproduce both electrical and thermal dynamics is discussed. The model, generated by starting with a series of data retrieved by FEM simulations, exploits a mapping between electrical and thermal quantities and allows reproducing the characteristics of the module in a pure PSpice simulation environment. After a description of the electro-thermal model and the related developed EDA synthesis environment, a series of simulation issues are discussed.
  • Keywords
    electronic design automation; finite element analysis; power convertors; EDA synthesis environment; FEM simulation; IPEM concept; PSpice-like model; electrical dynamics; electrothermal model; high-rate power circuitry; hybrid-electric vehicle motor drives; integrated power electronic modules; module thermal behaviour; multidomain simulation model; power converter manufacturing; pure PSpice simulation environment; renewable energy equipment; synthesis technique; thermal dynamics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Thermal Investigations of ICs and Systems (THERMINIC), 2013 19th International Workshop on
  • Conference_Location
    Berlin
  • Print_ISBN
    978-1-4799-2271-0
  • Type

    conf

  • DOI
    10.1109/THERMINIC.2013.6675200
  • Filename
    6675200