Published November 2014 | Version v1
Journal article

Hollow Fiber Membrane Contactors for Post-Combustion CO2 Capture: A Scale-Up Study from Laboratory to Pilot Plant

  • 1. Laboratoire Reactions et Genie des Procedes, LRGP - UPR CNRS 3349, 1 rue Grandville, 54000 Nancy (France)
  • 2. TNO, Leeghwaterstraat 46, 2628 CA Delft (Netherlands)
  • 3. Polymem, impasse du Palayre, 31100 Toulouse (France)
  • 4. IFP Energies nouvelles-Lyon, Rond-point de l'echangeur de Solaize, BP 3, 69360 Solaize (France)

Description

Membrane contactors have been proposed for decades as a way to achieve intensified mass transfer processes. Post-combustion CO2 capture by absorption into a chemical solvent is one of the currently most intensively investigated topics in this area. Numerous studies have already been reported, unfortunately almost systematically on small, laboratory scale, modules. Given the level of flue gas flow rates which have to be treated for carbon capture applications, a consistent scale-up methodology is obviously needed for a rigorous engineering design. In this study, the possibilities and limitations of scale-up strategies for membrane contactors have been explored and will be discussed. Experiments (CO2 absorption from a gas mixture in a 30% wt MEA aqueous solution) have been performed both on mini-modules and at pilot scale (10 m2 membrane contactor module) based on PTFE hollow fibers. The results have been modelled utilizing a resistance in series approach. The only adjustable parameter is in fitting the simulations to experimental data is the membrane mass transfer coefficient (km), which logically plays a key role. The difficulties and uncertainties associated with scale-up computations from lab scale to pilot scale modules, with a particular emphasis on the km value, are presented and critically discussed. (authors)

Availability note (English)

Available from doi: http://dx.doi.org/10.2516/ogst/2012046

Additional details

Additional titles

Original title (English)
Captage postcombustion du CO

Identifiers

Publishing Information

Journal Title
Oil and Gas Science and Technology
Journal Volume
69
Journal Issue
no.6
Journal Page Range
p. 1035-1045
ISSN
1294-4475
CODEN
OGSTFA

Optional Information

Notes
39 refs.