• English
    • العربية
  • العربية
  • Login
  • QU
  • QU Library
  •  Home
  • Communities & Collections
  • Help
    • Item Submission
    • Publisher policies
    • User guides
    • FAQs
  • About QSpace
    • Vision & Mission
View Item 
  •   Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Faculty Contributions
  • College of Engineering
  • Electrical Engineering
  • View Item
  • Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Faculty Contributions
  • College of Engineering
  • Electrical Engineering
  • View Item
  •      
  •  
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Mobile Battery Storage Modeling and Normal-Emergency Operation in Coupled Distribution-Transportation Networks

    Thumbnail
    Date
    2022
    Author
    Saboori, Hedayat
    Mehrjerdi, Hasan
    Jadid, Shahram
    Metadata
    Show full item record
    Abstract
    Previous research has proved that Mobile Battery Energy Storage (MBES) can play a pivotal role in achieving resiliency goals in distribution networks besides sustainability purposes. The missing links in the practical deployment of this new flexibility resource are the discontinuity between normal and emergency operating states in addition to the high computational burden. Accordingly, a new rolling-horizon operation model for a fleet of truck-mounted mobile batteries (TMMBs) employed in a joint transportation-distribution network is proposed. The model can effectively handle and switch between normal and emergency states by integrating a new schedule memory concept into the upcoming horizons. The spatial and temporal dynamics of the TMMBs, along with the transportation time and cost constraints, are modeled by a novel linear and computationally affordable formulation. The model runtime is further targeted by proposing a two-stage optimization model to detach transportation network calculations from the distribution grid. Additionally, a lexicographic multi-objective paradigm is used to ensure a maximum resiliency plan at the minimum expenses during emergencies. The model considers outage and congestion change of the road traffic beyond the forecasted values besides network uncertainties. Implementing the model on a test case proves its functionality in dealing with diverse network situations. 2010-2012 IEEE.
    DOI/handle
    http://dx.doi.org/10.1109/TSTE.2022.3189838
    http://hdl.handle.net/10576/36335
    Collections
    • Electrical Engineering [‎2821‎ items ]

    entitlement


    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Home

    Submit your QU affiliated work

    Browse

    All of Digital Hub
      Communities & Collections Publication Date Author Title Subject Type Language Publisher
    This Collection
      Publication Date Author Title Subject Type Language Publisher

    My Account

    Login

    Statistics

    View Usage Statistics

    About QSpace

    Vision & Mission

    Help

    Item Submission Publisher policiesUser guides FAQs

    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Video