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April 12, 2026Applied Sciences0 citationsOpen Access

Phase-Aware Predictive Scheduling for Harmonic Hosting in Low-Voltage EV Feeders: An Integrated Decision Framework

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PAPaúl ArévaloDODanny Ochoa-CorreaDBDarío Benavides

Key Points

  • The research aims to address harmonic distortion and voltage unbalance in low-voltage electric vehicle feeders through predictive scheduling.
  • Developed a predictive scheduling framework for electric vehicle charging management.
  • Formulated feeder operation as a decision problem to optimize charging power and phase allocation.
  • Utilized time-series harmonic power-flow simulations with realistic feeder parameters and charger profiles.
  • Coordinated phase-aware scheduling increased admissible charging capacity.
  • Improved compliance margins for key power-quality indices.
  • Reduced mitigation efforts compared to uncontrolled charging strategies.

Abstract

Fast charging of electric vehicles can introduce phase-dependent harmonic distortion and voltage unbalance in low-voltage feeders, which may reduce admissible charging capacity even when voltage magnitudes remain within conventional limits. This paper proposes a phase-aware predictive scheduling framework for harmonic hosting management in feeders with a high penetration of electric vehicle charging. The proposed method formulates feeder operation as a predictive decision problem that jointly determines charging power levels, phase allocation, and the selective activation of multifunctional compensation resources under harmonic distortion, voltage unbalance, and neutral-current constraints. Unlike previous studies centered on harmonic characterization, static hosting assessment, or local converter-level mitigation, the proposed approach treats harmonic hosting as an active feeder-level network management problem. The framework is evaluated through time-series harmonic power-flow simulations using charger harmonic emission profiles and realistic feeder parameters. The numerical results indicate that coordinated phase-aware scheduling can increase admissible charging capacity, improve compliance margins for power-quality indices, and reduce mitigation efforts with respect to uncontrolled charging and non-coordinated compensation strategies. Overall, the results support the use of phase-aware scheduling as a feeder-level strategy to improve electric vehicle charging integration under harmonic and unbalanced constraints.

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Cite This Study

Arévalo et al. (2026) studied this question.

synapsesocial.com/papers/69db37254fe01fead37c5161https://doi.org/10.3390/app16083718
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