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March 15, 2026International Journal of Hydrogen Energy0 citationsOpen Access

Life cycle analysis of hydrogen production via methane pyrolysis using plasma arc

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CNClarence NgPVPradeep VyawahareYXYiling Xu

Key Points

  • This research aims to evaluate the life cycle greenhouse gas emissions of hydrogen production through methane pyrolysis.
  • Developed a life-cycle inventory using ASPEN Plus software.
  • Modeled hydrogen production via methane pyrolysis with a plasma arc process.
  • Analyzed emissions from well to gate, focusing on electricity consumption.
  • Hydrogen production emits 2.78 kg CO2e per kg of H2 using traditional methods.
  • Electricity consumption constitutes 81% of total emissions; approximately 38 kWh is required per kg of H2.
  • Using renewable electricity can reduce emissions to −0.448 kg CO2e per kg of H2.

Abstract

Steam methane reforming of natural gas is the primary method of producing hydrogen in the United States, accounting for 95% of all hydrogen produced there. Methane pyrolysis, an alternative production pathway that decomposes natural gas into solid carbon and hydrogen, both eliminates CO 2 emissions associated with methane reforming and allows for additional income from carbon black. A life-cycle inventory of this process has been developed using ASPEN Plus to model the methane pyrolysis (plasma arc) process. From well to gate, hydrogen production via methane pyrolysis produces 2.78 kg CO 2 e/kg H 2 of greenhouse gas emissions using mass allocation of emissions between hydrogen and carbon black coproducts. The well-to-gate emissions are mainly driven by electricity consumption (∼38 kW h/kg H 2 ), which accounts for 81% of the emissions; if renewable electricity is used, well-to-gate emissions can be reduced to −0.448 kg CO 2 e/kg H 2 . • Methane pyrolysis is a viable alternative method of hydrogen production. • Mass allocation of emissions between hydrogen, carbon black, and coke. • Electricity is the main contributing factor to WTG emissions of hydrogen produced. • H 2 WTG emissions decrease from 2.72 to −0.437 kgCO 2 e/kgH 2 using renewable energy.

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Cite This Study

Ng et al. (2026) studied this question.

synapsesocial.com/papers/69b64c67b42794e3e660da76https://doi.org/10.1016/j.ijhydene.2026.154474
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