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Resilience Enhancement for Electricity and Cellular Wireless Networks Using Mobile Energy Storage Systems

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

The power consumption of base stations (BSs) is increasing with the growth of the number of mobile terminals and communication requirements. In this context, the reliability of the power supply for BSs directly impacts the resilience of communication networks, which has become a critical concern for modern society. Previous studies have not fully addressed the interdependence between electricity and cellular wireless networks, nor the dynamic adaptability required to maintain a continuous power supply for BSs during severe disruptions. This paper addresses these gaps by investigating the synergistic interaction between these networks, with a particular focus on the spatial demand shift of communication loads and quality-of-service (QoS) metrics. Furthermore, we propose a novel three-stage resilience enhancement strategy, leveraging the mobility of mobile energy storage systems (MESSs). In the first stage, a robust optimization model is developed to pre-position MESSs at vulnerable points in the coupled electricity and communication networks, ensuring comprehensive preparedness for worst-case scenarios. During the second stage, a microgrid formation model is introduced to isolate the power supply of BSs from the disrupted main grid, mitigating the risk of failure propagation. In the third stage, we propose a dynamic MESS dispatch model based on a spatial-temporal multi-layer directed graph and an adaptive network reconfiguration strategy to efficiently restore power to BSs. Case studies conducted on a 58-bus distribution system validate the effectiveness of the proposed method in enhancing resilience through optimal MESS scheduling and microgrid formation. © 2025 IEEE.
Original languageEnglish
Pages (from-to)7622-7635
Number of pages14
JournalIEEE Transactions on Consumer Electronics
Volume71
Issue number3
Online published29 Jul 2025
DOIs
Publication statusPublished - Aug 2025

Funding

This work was supported in part by the JC STEM Laboratory of Future Energy Systems under Grant 2025-0039; in part by the Global STEM Professorship under Grant GSP313; in part by the Startup Grant of City Univeristy of Hong Kong (Data Driven Real Time Smart Energy Management System Supporting Energy Transition); in part by the National Natural Science Foundation of China under Grant 72061147004 and Grant 72342001; in part by the Research Project of Department of Science and Technology of Hunan province under Grant 2025JJ10009, Grant 2025QK1004, and Grant 2024RC9012; in part by the Australian Research Council (ARC) Research Hub Grant IH180100020; in part by the ARC Training Center under Grant IC200100023; and in part by the ARC linkage under Project LP200100056 and Project DP220103881.

Research Keywords

  • Base stations
  • cellular wireless network
  • microgrid formation
  • mobile energy storage system
  • network reconfiguration
  • resilience enhancement

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