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February 6, 2026Processes0 citationsOpen Access

Resilient Control Strategies for Urban Energy Transitions: A Robust HRES Sizing Typology for Nearly Zero Energy Ports

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NSNikolaos Sifakis

Key Points

  • To develop a resilience-oriented control and sizing typology for Hybrid Renewable Energy Systems (HRES) for medium-sized ports aiming for Nearly Zero Energy.
  • Analyzed five years of electrical demand data with 15 min resolution.
  • Simulated 35 HRES configurations using HOMER Pro.
  • Assessed both photovoltaic and wind generation combined with different energy storage systems.
  • Compared lead-acid and vanadium redox flow batteries under two grid-interface control strategies: Net Metering (NM) and non-NM.
  • Evaluated system performance through a multi-criteria framework including economic, environmental, and reliability metrics.
  • NM-enabled HRES architectures significantly outperform non-NM configurations.
  • Optimal NM configuration achieves a Levelized Cost of Energy of 0.063 €/kWh and reduces carbon intensity to approximately 70 gCO2,eq/kWh.
  • Non-NM systems require more storage and generation, with higher costs of 0.12–0.15 €/kWh due to oversizing.
  • VRFB-based systems demonstrate better robustness and safety compared to lead-acid batteries.

Abstract

Ports located within dense urban environments face a major challenge in achieving deep decarbonization without compromising the reliability and safety of critical maritime operations. This study develops and validates a resilience-oriented control and sizing typology for Hybrid Renewable Energy Systems (HRESs), supporting the transition of a medium-sized Mediterranean port toward a Nearly Zero Energy Port (nZEP). The framework integrates five years of measured electrical demand at 15 min resolution to capture stochastic load variability, seasonal effects, and safety-critical peak events. Thirty-five HRES configurations are simulated using HOMER Pro, assessing photovoltaic and wind generation combined with alternative Energy Storage System (ESS) technologies under two grid-interface control strategies: Net Metering (NM) and non-NM curtailment-based operation. Conventional Lead–Acid batteries are compared with inherently safer Vanadium Redox Flow Batteries (VRFBs), while autonomy constraints of 24 h and 48 h are imposed to represent operational resilience. System performance is evaluated through a multi-criteria framework encompassing economic viability (Levelized Cost of Energy), environmental impact (Lifecycle Assessment-based carbon footprint), and operational reliability. Results indicate that NM-enabled HRES architectures significantly outperform non-NM configurations by exploiting the external grid as an active balancing layer. The optimal NM configuration achieves a Levelized Cost of Energy of 0.063 €/kWh under a 24 h autonomy constraint, while reducing operational carbon intensity to approximately 70 gCO2,eq/kWh, corresponding to a reduction exceeding 90% relative to baseline grid-dependent operation. In contrast, non-NM systems require substantial storage and generation oversizing to maintain resilience, resulting in higher curtailment losses and Levelized Cost of Energy values of 0.12–0.15 €/kWh. Across both control regimes, VRFB-based systems consistently exhibit superior robustness and safety performance compared to Lead–Acid alternatives. The proposed typology provides a transferable framework for resilient and low-carbon port microgrid design under real-world operational constraints.

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Nikolaos Sifakis (2026) studied this question.

synapsesocial.com/papers/698586118f7c464f23009f0fhttps://doi.org/10.3390/pr14030549
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