Production of Hydrogen Gas for Cooking

Quadri Nasiru *

Department of Agricultural and Environmental Engineering, Federal University of Technology, Akure, Nigeria.

Taye Stephen Mogaji

Department of Mechanical Engineering, Federal University of Technology, Akure, Nigeria.

Ayodele Ebenezer Ajayi

Department of Agricultural and Environmental Engineering, Federal University of Technology, Akure, Nigeria.

Kolade Babafemi Tuyi

Center for Renewable Energy Technology, Federal University of Technology, Akure, Nigeria.

*Author to whom correspondence should be addressed.


Abstract

This study evaluated the feasibility of a scaled-down, renewable-energy-powered hydrogen generation system for domestic cooking. The proposed system integrated solar-powered electrolysis, electrolyte circulation, hydrogen separation, compression, storage, and burner delivery. Design calculations were based on the stated average LPG consumption of 0.5 kg per day and an LPG energy content of 46.4 MJ kg⁻¹, corresponding to 23.2 MJ of heat. Using the stated hydrogen heat content of 120 MJ kg⁻¹, the calculated hydrogen requirement was approximately 0.193 kg, with a corresponding water requirement of 1.737 kg. A four-cell alkaline electrolyser was fabricated and operated with electrolytes spanning pH 11–13 at 12 V and 20 A. During 60 s tests, measured hydrogen volume increased from 3.03 mL at pH 11 to 5.33 mL at pH 13. The study also developed compression and storage estimates for the proposed domestic system. Although the experimental results showed increasing hydrogen output with increasing alkalinity within the tested range, the selected Meko burner did not sustain continuous hydrogen combustion. The findings therefore demonstrate prototype-level hydrogen generation and provide design information for an integrated production, compression, storage, and delivery concept. However, practical household cooking application was not demonstrated and requires further development of burner compatibility, gas handling, safety, storage integration, and complete system performance under realistic operating conditions.

Keywords: Green hydrogen, domestic cooking, alkaline electrolysis, solar energy, hydrogen storage, hydrogen compression


How to Cite

Nasiru, Quadri, Taye Stephen Mogaji, Ayodele Ebenezer Ajayi, and Kolade Babafemi Tuyi. 2026. “Production of Hydrogen Gas for Cooking”. Journal of Energy Research and Reviews 18 (10):138-52. https://doi.org/10.9734/jenrr/2026/v18i10548.

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