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This paper addresses the techno-economic assessment of two membrane-based technologies for H 2 production from natural gas, fully integrated with CO 2 capture. In the first configuration, a fluidized bed membrane reactor (FBMR) is integrated in the H 2 plant: the natural gas reacts with steam in the catalytic bed and H 2 is simultaneously separated using Pd-based membranes, and the heat of reaction is provided to the system by feeding air as reactive sweep gas in part of the membranes and by burning part of the permeated H 2 (in order to avoid CO 2 emissions for heat supply). In the second system, named membrane assisted chemical looping reforming (MA-CLR), natural gas is converted in the fuel rector by reaction with steam and an oxygen carrier (chemical looping reforming), and the produced H 2 permeates through the membranes. The oxygen carrier is re-oxidized in a separate air reactor with air, which also provides the heat required for the endothermic reactions in the fuel reactor. The plants are optimized by varying the operating conditions of the reactors such as temperature, pressures (both at feed and permeate side), steam-to-carbon ratio and the heat recovery configuration. The plant design is carried out using Aspen Simulation, while the novel reactor concepts have been designed and their performance have been studied with a dedicated phenomenological model in Matlab. Both configurations have been designed and compared with reference technologies for H 2 production based on conventional fired tubular reforming (FTR) with and without CO 2 capture.
Spallina et al. (Wed,) studied this question.