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Article

Sustainable Hydrogen Production from Plastic Waste: Optimizing Pyrolysis for a Circular Economy

by
Fiyinfoluwa Joan Medaiyese
*,
Hamid Reza Nasriani
,
Khalid Khan
and
Leila Khajenoori
School of Engineering & Computing, University of Central Lancashire, Preston PR1 2HE, UK
*
Author to whom correspondence should be addressed.
Hydrogen 2025, 6(1), 15; https://doi.org/10.3390/hydrogen6010015
Submission received: 30 January 2025 / Revised: 27 February 2025 / Accepted: 1 March 2025 / Published: 7 March 2025

Abstract

Hydrogen is a clean, non-polluting fuel and a key player in decarbonizing the energy sector. Interest in hydrogen production has grown due to climate change concerns and the need for sustainable alternatives. Despite advancements in waste-to-hydrogen technologies, the efficient conversion of mixed plastic waste via an integrated thermochemical process remains insufficiently explored. This study introduces a novel multi-stage pyrolysis-reforming framework to maximize hydrogen yield from mixed plastic waste, including polyethylene (HDPE), polypropylene (PP), and polystyrene (PS). Hydrogen yield optimization is achieved through the integration of two water–gas shift reactors and a pressure swing adsorption unit, enabling hydrogen production rates of up to 31.85 kmol/h (64.21 kg/h) from 300 kg/h of mixed plastic wastes, consisting of 100 kg/h each of HDPE, PP, and PS. Key process parameters were evaluated, revealing that increasing reforming temperature from 500 °C to 1000 °C boosts hydrogen yield by 83.53%, although gains beyond 700 °C are minimal. Higher reforming pressures reduce hydrogen and carbon monoxide yields, while a steam-to-plastic ratio of two enhances production efficiency. This work highlights a novel, scalable, and thermochemically efficient strategy for valorizing mixed plastic waste into hydrogen, contributing to circular economy goals and sustainable energy transition.
Keywords: hydrogen; pyrolysis; pyrolysis and in-line reforming; steam reforming; plastic wastes; waste plastics; Aspen Plus; simulation; optimization hydrogen; pyrolysis; pyrolysis and in-line reforming; steam reforming; plastic wastes; waste plastics; Aspen Plus; simulation; optimization

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MDPI and ACS Style

Medaiyese, F.J.; Nasriani, H.R.; Khan, K.; Khajenoori, L. Sustainable Hydrogen Production from Plastic Waste: Optimizing Pyrolysis for a Circular Economy. Hydrogen 2025, 6, 15. https://doi.org/10.3390/hydrogen6010015

AMA Style

Medaiyese FJ, Nasriani HR, Khan K, Khajenoori L. Sustainable Hydrogen Production from Plastic Waste: Optimizing Pyrolysis for a Circular Economy. Hydrogen. 2025; 6(1):15. https://doi.org/10.3390/hydrogen6010015

Chicago/Turabian Style

Medaiyese, Fiyinfoluwa Joan, Hamid Reza Nasriani, Khalid Khan, and Leila Khajenoori. 2025. "Sustainable Hydrogen Production from Plastic Waste: Optimizing Pyrolysis for a Circular Economy" Hydrogen 6, no. 1: 15. https://doi.org/10.3390/hydrogen6010015

APA Style

Medaiyese, F. J., Nasriani, H. R., Khan, K., & Khajenoori, L. (2025). Sustainable Hydrogen Production from Plastic Waste: Optimizing Pyrolysis for a Circular Economy. Hydrogen, 6(1), 15. https://doi.org/10.3390/hydrogen6010015

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