Optimization of a wet-cell electrolyzer for efficient oxyhydrogen (HHO) gas production: a step towards sustainable green energy solutions
効率的な酸水素(HHO)ガス製造のための湿式電解槽の最適化:持続可能なグリーンエネルギーソリューションへの一歩 (AI 翻訳)
N. H. Fayez, M. Qenawy, H. M. Mustafa, M. Shehadeh, M. Taha, A. H. Abdelbaky Elbatran
🤖 gxceed AI 要約
日本語
本研究は、湿式電解槽を用いたHHOガス製造の効率最大化を目的とし、電極面積やプレート構成、KOH濃度などの設計・運転パラメータを系統的に調査。4種類の構成を比較し、最適設計(Delta)ではHHO流量3.4 L/min、エネルギー消費3.1 kWh/m³、システム効率59.74%を達成。電極幾何形状と電解質管理が効率向上の鍵であることを実証した。
English
This study systematically investigates design and operational parameters of a wet-cell HHO generator to maximize efficiency. Among four configurations, the optimized Delta design achieved a peak HHO flow rate of 3.4 L/min with specific energy consumption of 3.1 kWh/m³ and overall system efficiency of 59.74%. Electrode geometry and electrolyte management are identified as critical drivers for efficient HHO production.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
本研究成果は、日本の水素基本戦略やグリーンイノベーション基金における水素製造技術の効率化に寄与する。湿式電解槽の実用化は、再生可能エネルギー由来の水素製造コスト低減につながり、日本のカーボンニュートラル目標達成に貢献する可能性がある。
In the global GX context
This paper contributes to the global green hydrogen production literature by providing experimental optimization of wet-cell electrolyzers. It offers practical insights for improving electrolyzer efficiency, which is critical for reducing the cost of green hydrogen and enabling large-scale decarbonization across sectors.
👥 読者別の含意
🔬研究者:Provides experimental data on wet-cell electrolyzer optimization for HHO production, useful for those working on electrolysis efficiency and hydrogen generation.
🏢実務担当者:Offers design parameters and performance benchmarks for building efficient HHO generators, applicable to on-site hydrogen production for industrial or energy storage use.
📄 Abstract(原文)
The urgent need for sustainable energy solutions drives innovation in clean fuel technologies. Oxyhydrogen (HHO) gas, produced through water electrolysis, presents a promising green energy vector. While often studied in dry-cell configurations, wet-cell electrolyzers offer advantages for efficient, scalable production but require further optimization. This study systematically investigates the design and operational parameters of a wet-cell HHO generator to maximize efficiency. Four distinct configurations (Alpha, Beta, Gamma, Delta) were constructed, varying in electrode cross-sectional area (75 × 75 mm² vs. 150 × 150 mm²), plate configuration (18 vs. 20 plates), and tested at different potassium hydroxide (KOH) concentrations (10 and 20 g/L). Performance was evaluated based on HHO flow rate, specific energy consumption, and overall system efficiency. Experimental results demonstrate that the Delta generator significantly outperformed all other designs. It achieved a peak HHO flow rate of 3.4 L/min with a specific energy consumption of 3.1 kWh·m⁻³ and a notable overall system efficiency of 59.74%. In contrast, the Alpha, Beta, and Gamma generators attained lower efficiencies of 12.7%, 23.86%, and 41.9%, respectively. The superior performance of the Delta design is attributed to its optimized combination of a larger electrode area, which reduces current density and associated overpotentials, and an effective electrode configuration that maximizes active surface area and thermal management. This study conclusively identifies optimal electrode geometry and electrolyte management as critical drivers for efficient HHO production. The optimized wet-cell electrolyzer presents a sustainable and practical technology for on-demand green hydrogen production, with direct potential applications as a combustion enhancer or a storage solution for intermittent renewable energy, contributing to the advancement of sustainable energy systems.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://doi.org/10.1038/s41598-026-45418-zfirst seen 2026-05-15 20:42:12
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