The study of integrated membrane reactors for the production of pure hydrogen is attracting increasing interest. In this work, we show how these systems may be described through pure transport models, accounting for the competition between different transport mechanisms, in the limit for either infinitely fast or infinitely slow reaction. The actual performance of a reactor will lie between these two limiting-case conditions. The results of this work highlight that the behavior of these systems may be described as a continuous sequence of equilibrium states. The main novelty of the study is in the introduction of a simple model that allows to evaluate integral quantities, such as hydrogen permeate flow rate and yield, on the basis of physical parameters and not through fitting of transport coefficients. Methane steam reforming has been chosen as a case study, but the conclusions reached may be extended to other integrated reactors for which the permeation law of the product across the membrane is non-linear.

An equilibrium theory for catalytic steam reforming in membrane reactors / Murmura, MARIA ANNA; Cerbelli, Stefano; Annesini, Maria Cristina. - In: CHEMICAL ENGINEERING SCIENCE. - ISSN 0009-2509. - 160:(2017), pp. 291-303. [10.1016/j.ces.2016.11.039]

An equilibrium theory for catalytic steam reforming in membrane reactors

MURMURA, MARIA ANNA;CERBELLI, Stefano;ANNESINI, Maria Cristina
2017

Abstract

The study of integrated membrane reactors for the production of pure hydrogen is attracting increasing interest. In this work, we show how these systems may be described through pure transport models, accounting for the competition between different transport mechanisms, in the limit for either infinitely fast or infinitely slow reaction. The actual performance of a reactor will lie between these two limiting-case conditions. The results of this work highlight that the behavior of these systems may be described as a continuous sequence of equilibrium states. The main novelty of the study is in the introduction of a simple model that allows to evaluate integral quantities, such as hydrogen permeate flow rate and yield, on the basis of physical parameters and not through fitting of transport coefficients. Methane steam reforming has been chosen as a case study, but the conclusions reached may be extended to other integrated reactors for which the permeation law of the product across the membrane is non-linear.
2017
boundary conditions; equilibrium modeling; hydrogen yield; pure transport model; chemistry (all); chemical engineering (all); industrial and manufacturing engineering; applied mathematics
01 Pubblicazione su rivista::01a Articolo in rivista
An equilibrium theory for catalytic steam reforming in membrane reactors / Murmura, MARIA ANNA; Cerbelli, Stefano; Annesini, Maria Cristina. - In: CHEMICAL ENGINEERING SCIENCE. - ISSN 0009-2509. - 160:(2017), pp. 291-303. [10.1016/j.ces.2016.11.039]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/925930
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