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Characterization of Hydrogen-in-Oxygen Changes in Alkaline Electrolysis Hydrogen Production System and Analysis of Influencing Factors

Abstract

Industrial alkaline water electrolysis systems face challenges in maintaining hydrogenin-oxygen impurity within safe limits under fluctuating operating conditions. This study aims to characterize the dynamic response of hydrogen-in-oxygen concentration in an industrial 10 kW alkaline water electrolysis test platform (2 Nm3/h hydrogen output at 1.6 MPa and 90 ◦C) and to identify how operating parameters influence hydrogen-inoxygen behavior. We systematically varied the cell current, system pressure, and electrolyte flow rate while monitoring real-time hydrogen-in-oxygen levels. The results show that hydrogen-in-oxygen exhibits significant inertia and delay: during startup, hydrogen-inoxygen remained below the 2% safety threshold and stabilized at 0.9% at full load, whereas a step decrease to 60% load caused hydrogen-in-oxygen to rise to 1.6%. Furthermore, reducing the pressure from 1.4 to 1.0 MPa lowered the hydrogen-in-oxygen concentration by up to 15%, and halving the alkaline flow rate suppressed hydrogen-in-oxygen by over 20% compared to constant conditions. These findings provide new quantitative insights into hydrogen-in-oxygen dynamics and offer a basis for optimizing control strategies to keep gas purity within safe limits in industrial-scale alkaline water electrolysis systems.

Funding source: This research was funded by the Guangdong Basic and Applied Basic Research Foundation (2024A1515110095), Song Hu, 100 000; the Opening Fund from the National Center of Technology Innovation for Fuel Cell (nctifc-sq-2024-101), Song Hu, 250 000; the Fundamental Research Funds for the Central Universities (FRF-TP-22-031A1), Song Hu, 100 000; the Scientific and Technological Innovation Foundation of Foshan, USTB (BK22BE010), Song Hu, 240 000.
Related subjects: Production & Supply Chain
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/content/journal7526
2025-08-10
2025-12-05
/content/journal7526
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