• DocumentCode
    1794589
  • Title

    Multi-Objective Control of Balancing Systems for Li-Ion Battery Packs: A Paradigm Shift?

  • Author

    Barreras, Jorge V. ; Pinto, Claudio ; de Castro, Ricardo ; Schaltz, Erik ; Andreasen, Soren J. ; Esteves Araujo, Rui

  • Author_Institution
    Dept. of Energy Technol., Aalborg Univ., Aalborg, Denmark
  • fYear
    2014
  • fDate
    27-30 Oct. 2014
  • Firstpage
    1
  • Lastpage
    7
  • Abstract
    While a great number of battery balancing circuit topologies have been proposed, the unique control objective typically pursued is equalization of single cell charge. However, a balancing circuit could offer potentially more control features, especially with topologies able to provide bidirectional power flow control. This has not been explored yet in literature or at least not with enough thoroughness. Thus, in addition to charge balancing, up to three more objectives could be pursued simultaneously. Firstly, virtual resistance control, in order to provide dynamic compensation for variations in terminal cell voltage. Secondly, thermal management, to achieve a more uniform temperature distribution within a battery pack. Third, on-board diagnosis or fault detection tools, e.g. to perform characterization tests or to identify and even isolate problematic cells. In this paper, this issue is discussed and evaluated for a battery pack made up of 48 large format Li-Ion cells in series in a e-mobility application. Simulation results demonstrate the technical feasibility of this newly defined concept.
  • Keywords
    fault diagnosis; load flow control; secondary cells; temperature distribution; thermal management (packaging); battery balancing circuit topology systems; bidirectional power flow control; characterization test performance; charge balancing; dynamic compensation; e-mobility application; fault detection tools; large format lithium-ion cells; lithium-ion battery packs; multiobjective control feature; on-board diagnosis; paradigm shift; problematic cell isolation; single cell charge equalization; terminal cell voltage; thermal management; uniform temperature distribution; virtual resistance control; Batteries; Control systems; Fault detection; Integrated circuit modeling; Mathematical model; System-on-chip; Voltage control;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Vehicle Power and Propulsion Conference (VPPC), 2014 IEEE
  • Conference_Location
    Coimbra
  • Type

    conf

  • DOI
    10.1109/VPPC.2014.7007107
  • Filename
    7007107