Abstract

For the first time, a novel highly permeable glassy polymer, addition poly[bis(trimethylsilyl)tricyclononene] (PBTMST), was proposed for its use in a gas-liquid membrane contactor for the regeneration of CO2 absorption liquids (desorption of CO2 ). This membrane material possesses a good chemical stability and high barrier properties for a number of alkanolmines (30 wt% solutions of MEA, DEA, MDEA, AMP, DEAE or AEAE) under typical regeneration conditions (T = 100°C). Studies on gas transport properties of PBTMST (100°C and 1-40 bar) show that permeability coefficients of oxygen, nitrogen and carbon dioxide initially tend to decrease, and then level off after first 6-8 hours of operation. This behavior can be explained by partial relaxation of the free-volume structure of PBTMST, no chemical degradation of polymer material at high temperature was confirmed by IR analysis. At the same time, this membrane material preserves high gas permeability coefficients which are higher than those of conventional materials used in the membrane contactors. Gas-liquid membrane contactor based on dense PBTMST membrane shows a good, stable performance; particularly, CO2 loading in diethanolamine solution (30 wt%) can be reduced for 0.05-0.34 mole/mole by single pass through the membrane desorber at 100°C and elevated pressure. It seems that desorption rate here is mainly controlled by liquid phase because decreasing of membrane thickness by 50% (from 31 to 21 μm) leads to improvement of DEA regeneration only by 1.5-8.5%.

Highlights

  • In recent years, numerous studies have focused on the advantages of a new promising technology for the purification of different gas streams from carbon dioxide – gas/liquid membrane contactors for absorption and desorption of CO2

  • The most studied application of membrane contactors is CO2 absorption by using porous hollow-fiber membranes based on hydrophobic polymers such as PolyPropylene (PP), PolyEthylene (PE), Poly[TetraFluoroEthylene] (PTFE) or Poly[VinyliDene Fluoride] (PVDF) [3, 5, 8,9,10,11,12]

  • High gas transport characteristics of the selected polymer can be attributed to high free-volume fraction, which is equal to nearly 19% for poly[bis (trimethylsilyl)tricyclononene] (PBTMST) (Tab. 3)

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Summary

Introduction

Numerous studies have focused on the advantages of a new promising technology for the purification of different gas streams from carbon dioxide – gas/liquid membrane contactors for absorption and desorption of CO2. The most studied application of membrane contactors is CO2 absorption by using porous hollow-fiber membranes based on hydrophobic polymers such as PolyPropylene (PP), PolyEthylene (PE), Poly[TetraFluoroEthylene] (PTFE) or Poly[VinyliDene Fluoride] (PVDF) [3, 5, 8,9,10,11,12]. This approach allows one to achieve a marked increase in the packing density of the membrane module as well as to reduce the mass-transport resistance

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