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Funded Projects › FP7

GREEN-CC · Graded Membranes for Energy Efficient New Generation Carbon Capture Process

FP7Status: CLOSED1 September 201331 December 2017EU funding €5,462,714

Major sources for human made CO2 emissions comprise the energy and the industrial sector including cement production. One of the most appropriate concepts to capture CO2 from such point sources is the oxyfuel combustion. The main energy demand for this method results from the O2 generation, which is usually done by air liquefaction. This energy demand can substantially be lowered using thermally integrated separation modules based on ceramic oxygen transport membranes (OTM). It is least if the OTM is integrated in a 4-end mode, which entails that the permeating oxygen is swept and directly diluted using recirculated flue gas. Up to 60% reduction in capture energy demand compared to cryogenic air separation and up to 40% reduction compared to post-combustion capture approaches can be achieved.GREEN-CC will provide a new generation high-efficiency capture process based on oxyfuel combustion. The focus lies on the development of clear integration approaches for OTM-modules in power plants and cement industry considering minimum energy penalty related to common CO2 capture and integration in existing plants with minimum capital investment. This will be attained by using advanced process simulations and cost calculations. GREEN-CC will also explore the use of OTM-based oxyfuel combustion in different highly energy-demanding industrial processes, e.g. oil refining and petrochemical industry.However, highly permeable membrane materials show a chemical instability against CO2 and other flue gas components. One major challenge faced by GREEN-CC is therefore to identify and develop membrane materials, components, and a PoC-module for the 4-end mode OTM integration. The desired membrane assembly will consist of a thin membrane layer supported on substrates with engineered porosity and oxygen reduction catalysts with high and stable activity in flue gas. As proof of concept, a planar membrane module will be developed which involves technical hurdles like joining technology

Consortium · 14 organisations

coordinator

FORSCHUNGSZENTRUM JULICH GMBH

DE · €1,320,319

participant

THE UNIVERSITY OF QUEENSLAND

AU

participant

IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE

UK · €510,022

participant

RHEINISCH-WESTFAELISCHE TECHNISCHE HOCHSCHULE AACHEN

DE · €1,002,206

participant

THYSSENKRUPP INDUSTRIAL SOLUTIONS AG

DE · €60,755

participant

UNIVERSITEIT TWENTE

NL · €454,000

participant

ELCOGAS, S.A.

ES · €13,175

participant

AGENCIA ESTATAL CONSEJO SUPERIOR DE INVESTIGACIONES CIENTIFICAS

ES · €434,060

participant

LINDE AG

DE · €128,235

participant

RICERCA SUL SISTEMA ENERGETICO - RSE SPA

IT · €418,645

participant

DANMARKS TEKNISKE UNIVERSITET

DK · €850,003

participant

LATVIJAS UNIVERSITATES CIETVIELU FIZIKAS INSTITUTS

LV · €240,000

participant

INSTALACIONES INABENSA SA

ES · €12,793

participant

SHELL GLOBAL SOLUTIONS INTERNATIONAL BV

NL · €18,500

Research fields

View the official record on CORDIS →

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Source: CORDIS, Publications Office of the European Union. Global Research Partnerships surfaces open EU research data to help you find collaborators; we are not affiliated with the European Union.