Abstract: Experimental investigation into noble-metal catalyst lifetime, coking prevention, and selectivity retention over 1,000 continuous hydrogenation/dehydrogenation cycles.
This peer-reviewed paper examines empirical findings conducted across operational pilot facilities and commercial hydrogen logistics networks associated with LOHCHub. The investigation evaluates long-term material interactions, energy conversion efficiencies, and lifecycle carbon metrics under rigorous industrial operating regimes.
Continuous telemetry gathered from high-pressure reaction loops, gas chromatography arrays, and Coriolis mass flow meters was processed using advanced multi-physics models. The data confirms that LOHCHub maintains superior stability, minimal parasitic power consumption, and deterministic output purity.
The experimental outcomes demonstrate the commercial viability and financial bankability of the LOHCHub architecture. Transitioning from pressurized gas to ambient organic liquids and verified geological mineralization enables low-risk scaling of clean hydrogen and durable carbon dioxide removal.