Pune: Honeywell has announced the launch of ‘Honeywell Protonium,’ an advanced AI-powered suite of technologies designed to transform the production of green hydrogen. The new solution utilizes machine learning (ML) to improve efficiency, reduce costs, and enhance scalability in green hydrogen plants.
Honeywell Protonium aims to address some of the biggest challenges faced by green hydrogen producers, including power intermittency, carbon intensity, and high production costs. The solution enhances electrolysis efficiency while optimizing plant design and operations using predictive control algorithms.
Deployment at Mid-Atlantic Clean Hydrogen Hub
Aternium, a leading US-based clean hydrogen producer, will be the first company to deploy Honeywell Protonium. The technology will be implemented across Aternium’s planned Mid-Atlantic Clean Hydrogen Hub (MACH2), which is one of the seven national hydrogen hubs awarded by the US Department of Energy.
Optimizing Hydrogen Production for a Sustainable Future
Honeywell views Protonium as a key enabler of the future green energy landscape. The company believes that as green hydrogen adoption grows globally, the use of autonomous and AI-driven solutions will be essential for scaling production and advancing energy transition efforts.
The Protonium suite is designed to make hydrogen plants smarter, more efficient, and more sustainable, helping producers overcome existing operational limitations and unlock new levels of productivity.
Key Offerings of Honeywell Protonium
The Honeywell Protonium portfolio consists of three core solutions:
- Concept Design Optimizer: This tool optimizes plant design to lower the Levelized Cost of Hydrogen (LCOH), helping investors make quicker and more informed decisions.
- Hydrogen Electrolyser Control System: This system enhances electrolyzer performance for improved efficiency and extended equipment lifespan.
- Hydrogen Unified Control and Optimizer: This technology streamlines energy management and plant operations by utilizing digital twins, AI/ML optimization, and predictive analytics to reduce operating expenses.
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