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March 13, 2026International Journal of Hydrogen Energy0 citationsOpen Access

Green hydrogen-enabled power-to-methane energy storage in a biomass-solar hybrid system: A 4E assessment and multi-objective optimization

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SRShayan RabetSLShayan Sharafi LalehNKNavid Kusheshi

Key Points

  • To assess a biomass-solar hybrid system for renewable energy storage using a power-to-methane approach.
  • Integrated municipal solid waste-based biogas production and anaerobic digestion
  • Applied Proton Exchange Membrane (PEM) electrolysis for hydrogen production
  • Conducted a 4E analysis (energy, exergy, economic, and environmental)
  • Utilized Grey Wolf Optimizer for multi-objective optimization
  • Achieved 1215 kW of electricity and 0.18 kg/s of methane in the base case
  • Exergy efficiency improved to 19.06% in optimized scenarios
  • Realized a product cost of 52.89 $/GJ for methane
  • Confirmed effective integration of hydrogen pathways into renewable energy systems

Abstract

This study presents a novel biomass-solar hybrid energy system designed to store renewable energy through hydrogen-enabled power-to-methane conversion. The system integrates municipal solid waste-based biogas production, anaerobic digestion, Organic Rankine Cycle (ORC), Proton Exchange Membrane (PEM) electrolysis, and methanation. Hydrogen produced via solar-powered PEM electrolysis is combined with CO 2 captured from the system to synthesize methane—providing a storable, dispatchable energy carrier and contributing to long-duration energy storage. A detailed 4E (energy, exergy, economic, and environmental) analysis is conducted, followed by a multi-objective optimization using machine learning techniques and the Grey Wolf Optimizer under three scenarios. In the base case, the system delivers 1215 kW of electricity and 0. 18 kg/s of methane, achieving an emission index of 0. 0016 kg/kWh. With energy pricing assumptions of 0. 14 /kWh for electricity and 4 /kg for methane, the system shows a payback time of 5. 75 years. Optimized scenarios further enhance system performance—achieving 19. 06% exergy efficiency, 1. 59 kg/s of methane output, and a product cost of 52. 89 /GJ. The results confirm the effectiveness of integrating hydrogen pathways into renewable energy storage systems, enabling cleaner fuel production and improving the economic and environmental sustainability of energy systems. • A Cogeneration using biogas, solar energy, and methanation was proposed. • Technical, economic, and environmental analyses were conducted. • Multi-criteria and grey wolf optimization were employed. • Optimal exergy efficiency (19. 06%) and cost (52. 89 /GJ) were achieved.

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Cite This Study

Rabet et al. (2026) studied this question.

synapsesocial.com/papers/69b3acd302a1e69014cced95https://doi.org/10.1016/j.ijhydene.2026.154258
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