Optimal Load and Energy Management of Aircraft Microgrids Using Multi-Objective Model Predictive Control

Xin Wang, Jason Atkin, Najmeh Bazmohammadi, Serhiy Bozhko, Josep M. Guerrero*

*Corresponding author for this work

Research output: Contribution to journalJournal articleResearchpeer-review

21 Citations (Scopus)
96 Downloads (Pure)

Abstract

Safety issues related to the electrification of more electric aircraft (MEA) need to be addressed because of the increasing complexity of aircraft electrical power systems and the growing number of safety-critical sub-systems that need to be powered. Managing the energy storage systems and the flexibility in the load-side plays an important role in preserving the system’s safety when facing an energy shortage. This paper presents a system-level centralized operation management strategy based on model predictive control (MPC) for MEA to schedule battery systems and exploit flexibility in the demand-side while satisfying time-varying operational requirements. The proposed online control strategy aims to maintain energy storage (ES) and prolong the battery life cycle, while minimizing load shedding, with fewer switching activities to improve devices lifetime and to avoid unnecessary transients. Using a mixed-integer linear programming (MILP) formulation, different objective functions are proposed to realize the control targets, with soft constraints improving the feasibility of the model. In addition, an evaluation framework is proposed to analyze the effects of various objective functions and the prediction horizon on system performance, which provides the designers and users of MEA and other complex systems with new insights into operation management problem formulation.

Original languageEnglish
Article number13907
JournalSustainability (Switzerland)
Volume13
Issue number24
Number of pages24
ISSN2071-1050
DOIs
Publication statusPublished - 2021

Keywords

  • Demand-side flexibility
  • Energy storage management
  • Load management
  • Mixed-integer linear programming
  • Model predictive control
  • More electric aircraft
  • Multi-objective optimization

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