Yangjun Zeng, Yiwei Qiu
Thyristor rectifiers (TRs) are cost-effective electrolysis power supplies for renewable power-to-hydrogen (ReP2H) systems, but their harmonics may violate grid-code limits. In contrast to conventional solutions that rely on higher-pulse (such as 24-pulse) rectifiers, this paper proposes an operational harmonic coordination scheme that enables low-cost 12-pulse TRs to meet harmonic requirements through coordinated operation. First, a harmonic model quantifies the effects of rectifier transformer (RCT) tap positions and electrolytic currents, enabling harmonic cancellation among multiple electrolyzers (ELZs). A two-layer framework then coordinates hydrogen production and harmonic mitigation. Hourly scheduling determines ELZ commitment within the harmonic feasible region under renewable uncertainty using stochastic programming and a modified progressive hedging algorithm, while minute-level dispatch tracks renewable power and mitigates harmonics. A decomposition algorithm separates production dispatch from harmonic mitigation to improve computational efficiency. Case studies based on real-life projects show that the proposed method increases profit by 31% over current-only regulation. Annual simulations further show that coordinated 12-pulse TRs can replace 24-pulse rectifiers for harmonic compliance by exchanging additional RCT tap actions for lower transformer investment, reducing rectification-stage cost by 37.5%.
@article{de4519e6-948a-4e4a-abdd-327178ea0d20,
title={Beyond Higher-Pulse Rectification: Operational Harmonic Coordination in Renewable P2H Systems},
author={Yangjun Zeng and Yiwei Qiu},
year={2026},
language={en}
}TY - JOUR TI - Beyond Higher-Pulse Rectification: Operational Harmonic Coordination in Renewable P2H Systems AU - Yangjun Zeng AU - Yiwei Qiu PY - 2026 LA - en ER -
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