2021 Annual Meeting
Modeling and Optimization of a Membrane Reactor for the Steam Methane Reforming Process
With the modified design, an economic optimization is performed seeking hydrogen production maximization, using as decision variables the furnace and water-gas shift reactor temperatures, while respecting the operational limits of the conventional plant. In addition, the optimization problem also considers pollutant contamination constraints, regarding the concentration in the pressure swing adsorption tail gas. The optimization results in no changes to the conventional plant temperatures, minimizing operational impacts. The novel membrane reactor design generates reduced equipment footprint, but increases equipment purchase costs by $80,000 and operating costs by $188,000 annually. Conversely, there is an increase in hydrogen production of 1,250 kg/h, which generates a yearly increase of $22 million assuming an average hydrogen sales price of $2/kg. Thus, the developed model corresponds to a promising application of a novel, intensified design for economic hydrogen production.