• DocumentCode
    27642
  • Title

    Microgrids of Commercial Buildings: Strategies to Manage Mode Transfer From Grid Connected to Islanded Mode

  • Author

    Meegahapola, Lasantha Gunaruwan ; Robinson, Doug ; Agalgaonkar, A.P. ; Perera, Sarath ; Ciufo, Philip

  • Author_Institution
    Endeavour Energy Power Quality & Reliability Centre, Univ. of Wollongong, Wollongong, NSW, Australia
  • Volume
    5
  • Issue
    4
  • fYear
    2014
  • fDate
    Oct. 2014
  • Firstpage
    1337
  • Lastpage
    1347
  • Abstract
    Microgrid systems located within commercial premises are becoming increasingly popular and their dynamic behavior is still uncharted territory in modern power networks. Improved understanding in design and operation is required for the electricity utility and building services design sectors. This paper evaluates the design requirements for a commercial building microgrid system to facilitate seamless mode transition considering an actual commercial building microgrid system. A dynamic simulation model of the proposed microgrid system is established (utilizing DIgSILENT Power Factory) to aid the development of planning and operational philosophy for the practical system. An economic operational criterion is developed for the microgrid to incorporate selective mode transition in different time intervals and demand scenarios. In addition, a multi-droop control strategy has been developed to mitigate voltage and frequency variations during mode transition. Different system conditions considering variability in load and generation are analyzed to examine the responses of associated microgrid network parameters (i.e., voltage and frequency) with the proposed mode transition strategy during planned and unplanned islanding conditions. It has been demonstrated that despite having a rigorous mode transition strategy, control of certain loads such as direct online (DOL) and variable-speed-drive (VSD) driven motor loads is vital for ensuring seamless mode-transition, in particular for unplanned islanding conditions.
  • Keywords
    buildings (structures); distributed power generation; power distribution faults; DIgSILENT Power Factory; building services design; commercial building microgrids; electricity utility; grid connected mode; islanded mode; mode transfer management; mode transition strategy; multidroop control strategy; Batteries; Load modeling; Microgrids; Reactive power; Variable speed drives; Voltage control; Commercial building microgrids; islanded mode; mode transition; solar-photovoltaic (PV); variable-speed drive (VSD);
  • fLanguage
    English
  • Journal_Title
    Sustainable Energy, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1949-3029
  • Type

    jour

  • DOI
    10.1109/TSTE.2014.2305657
  • Filename
    6763020