This chapter represents an insight of a novel approach concerning modelling and characterization of the mass transport of light gases (e.g., CO2, H2, CH4, CO) in zeolite membranes, like silicalite and NaY. In particular, Knudsen and surface diffusion are paired to each other by the adsorption loading, which interestingly implies the presence of the blocking effect of the Knudsen flow, reduced at low temperature and high pressure because of the adsorbed molecules. It is shown how the necessary adsorption parameters, like heat of adsorption and saturation loading, are evaluated from adsorption isotherms as a function of temperature using a systematic methodology accounting for the weaker interaction of the molecules with increasing temperature. This methodology allows permeance and selectivity to be evaluated, providing a way to predict with efficacy the membrane behaviour in a wide range of temperature and pressure under mixture condition, allowing to identify the optimal working conditions.

Mass transport in zeolite membranes for gas treatment: a new insight

Zito PF;Brunetti A;Drioli E;Barbieri G
2017

Abstract

This chapter represents an insight of a novel approach concerning modelling and characterization of the mass transport of light gases (e.g., CO2, H2, CH4, CO) in zeolite membranes, like silicalite and NaY. In particular, Knudsen and surface diffusion are paired to each other by the adsorption loading, which interestingly implies the presence of the blocking effect of the Knudsen flow, reduced at low temperature and high pressure because of the adsorbed molecules. It is shown how the necessary adsorption parameters, like heat of adsorption and saturation loading, are evaluated from adsorption isotherms as a function of temperature using a systematic methodology accounting for the weaker interaction of the molecules with increasing temperature. This methodology allows permeance and selectivity to be evaluated, providing a way to predict with efficacy the membrane behaviour in a wide range of temperature and pressure under mixture condition, allowing to identify the optimal working conditions.
2017
Istituto per la Tecnologia delle Membrane - ITM
Inglese
E. Drioli, G. Barbieri, A. Brunetti
Membrane engineering for the treatment of gases - Volume 1 Gas-separation Problems Combined with Membrane Reactors
183
2015
32
978-1-78262-874-3
RSC Publishing
Cambridge
REGNO UNITO DI GRAN BRETAGNA
Sì, ma tipo non specificato
mass transport in zeolite
zeolites
5
02 Contributo in Volume::02.01 Contributo in volume (Capitolo o Saggio)
268
none
Zito, Pf; Caravella, A; Brunetti, A; Drioli, E; Barbieri, G
info:eu-repo/semantics/bookPart
   Design and Manufacturing of Catalytic Membrane Reactors by developing new nano-architectured catalytic and selective membrane materials
   DEMCAMER
   FP7
   262840
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/348922
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