PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
November 10, 2025Energies0 citationsOpen Access

Grid-Connected Bidirectional Off-Board Electric Vehicle Fast-Charging System

View Full Paper
AHAbdullah HaidarJMJohn MacaulayZZZhongfu Zhou

Key Points

  • A 74% reduction in DC-link voltage settling time improves responsiveness for electric vehicle charging and discharging.
  • Comprehensive modeling and optimization using the artificial bee colony approach is crucial for effective system integration.
  • Rigorous dynamic analysis reveals the importance of control frameworks for enhanced stability in electric vehicle charging systems.
  • The research highlights the need for system-wide optimization to achieve high-performance power delivery in charging infrastructure.

Abstract

The widespread adoption of electric vehicles (EVs) is contingent on high-power fast-charging infrastructure that can also provide grid stabilization services through bidirectional power flow. While the constituent power stages of such off-board chargers are well-known, a critical research gap exists in their system-level integration, where sub-optimal dynamic interaction between independently controlled stages often leads to DC-link instability and poor transient performance. This paper presents a rigorous, system-level study to address this gap by developing and optimizing a unified control framework for a high-power bidirectional EV fast-charging system. The system integrates a three-phase active front-end rectifier with an LCL filter and a four-phase interleaved bidirectional DC/DC converter. The methodology involves a holistic dynamic modeling of the coupled system, the design of a hierarchical control strategy augmented with a battery current feedforward scheme, and the system-wide optimization of all Proportional–Integral (PI) controller gains using the Artificial Bee Colony (ABC) algorithm. Comprehensive simulation results demonstrate that the proposed optimized control framework achieves a critically damped response, significantly outperforming a conventionally tuned baseline. Specifically, it reduces the DC-link voltage settling time during charging-to-discharging transitions by 74% (from 920 ms to 238 ms) and eliminates voltage undershoot, while maintaining excellent steady-state performance with grid current total harmonic distortion below 1.2%. The study concludes that system-wide metaheuristic optimization, rather than isolated component-level design, is key to unlocking the robust, high-performance operation required for next-generation EV fast-charging infrastructure, providing a validated blueprint for future industrial development.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Haidar et al. (2025) studied this question.

synapsesocial.com/papers/69253a16c0ce034ddc356e98https://doi.org/10.3390/en18225913
Ask AI
Helpful
Bookmark
Share
View Full Paper