Title of article :
Membrane/sorption-enhanced methanol synthesis process: Dynamic simulation and optimization
Author/Authors :
Bayat، نويسنده , , M. and Dehghani، نويسنده , , Z. and Rahimpour، نويسنده , , M.R.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
14
From page :
3256
To page :
3269
Abstract :
In this study, a dynamic mathematical model of a Membrane-Gas-Flowing Solids-Fixed Bed Reactor (Membrane-GFSFBR) with in-situ water adsorption in the presence of catalyst deactivation is proposed for methanol synthesis. The novel reactor consists of water adsorbent and hydrogen-permselective Pd-Ag membrane. In this configuration feed gas and flowing adsorbents are both fed into the outer tube of the reactor. Contact of gas and fine solids particles inside packed bed results in selective adsorption of water from methanol synthesis which leads to higher methanol production rate. Afterwards, the high pressure product is recycled to the inner tube of the reactor and hydrogen permeates to the outer tube which shifts the reaction towards more methanol production. Dynamic simulation result reveals that simultaneous application of water adsorbent and hydrogen permeation in methanol synthesis process contributes to a significant enhancement in methanol production. The notable advantage of Membrane-GFSFBR is the continuous adsorbent regeneration during the process. Moreover, a theoretical investigation has been performed to evaluate the optimal operating conditions and to maximize the methanol production in Membrane-GFSFBR using differential evolution (DE) algorithm as a robust method. The obtained optimization result shows there are optimum values of inlet temperatures of gas phase, flowing solids phase, and shell side under which the highest methanol production can be achieved.
Keywords :
optimization , Catalyst deactivation , Dynamic simulation , Hydrogen Permeation , Methanol synthesis , Adsorption
Journal title :
Journal of Industrial and Engineering Chemistry
Serial Year :
2014
Journal title :
Journal of Industrial and Engineering Chemistry
Record number :
1712192
Link To Document :
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