A platform for research: civil engineering, architecture and urbanism
Carbon2Chem-CCU® as a step toward a circular economy
With respect to the climate goals of the Paris agreement, different carbon dioxide \((CO_{2})\) reduction strategies are discussed for industrial processes. For a comparison of these strategies-carbon direct avoidance (CDA), carbon capture and storage (CCS), and carbon, capture, and utilization (CCU) - a holistic view is mandatory. In this article, recent literature is at first analyzed for stringent methodology, transparency and applied assessment criteria. Secondly, a new set of assessment criteria is presented: Beside the carbon reduction potential, the energy demand and costs, additional criteria for the mid-term impact of a \((CO_{2})\) reduction strategy like the reuse potential or social acceptance are analyzed. In a third step, publicized data is converted into consistent system boundaries. Deriving from the life cycle assessment (LCA) the method “system expansion” is selected. The impact of the system expansion approach is demonstrated by calculation of the \((CO_{2})\) and the energy balances of the CCU approach within different system boundaries. The system expansion is visualized systematically under the consideration of the different processes. The Carbon2Chem® project is described as one example for the CCU approach of the steel and chemical production, which offers a \((CO_{2})\) reduction of about 50%. Additionally the \((CO_{2})\) reduction potential is expandable proportional with increasing utilization of top gases. A consistent level of the energy demand for the CCU approach is shown compared to the conventional production processes of steel and chemicals.
Carbon2Chem-CCU® as a step toward a circular economy
With respect to the climate goals of the Paris agreement, different carbon dioxide \((CO_{2})\) reduction strategies are discussed for industrial processes. For a comparison of these strategies-carbon direct avoidance (CDA), carbon capture and storage (CCS), and carbon, capture, and utilization (CCU) - a holistic view is mandatory. In this article, recent literature is at first analyzed for stringent methodology, transparency and applied assessment criteria. Secondly, a new set of assessment criteria is presented: Beside the carbon reduction potential, the energy demand and costs, additional criteria for the mid-term impact of a \((CO_{2})\) reduction strategy like the reuse potential or social acceptance are analyzed. In a third step, publicized data is converted into consistent system boundaries. Deriving from the life cycle assessment (LCA) the method “system expansion” is selected. The impact of the system expansion approach is demonstrated by calculation of the \((CO_{2})\) and the energy balances of the CCU approach within different system boundaries. The system expansion is visualized systematically under the consideration of the different processes. The Carbon2Chem® project is described as one example for the CCU approach of the steel and chemical production, which offers a \((CO_{2})\) reduction of about 50%. Additionally the \((CO_{2})\) reduction potential is expandable proportional with increasing utilization of top gases. A consistent level of the energy demand for the CCU approach is shown compared to the conventional production processes of steel and chemicals.
Carbon2Chem-CCU® as a step toward a circular economy
Wich, Teresa (author) / Lueke, Wiebke (Dr. rer. nat.) (author) / Deerberg, Görge (Prof. Dr.-Ing.) (author) / Oles, Markus (Dr. rer. nat.) (author)
2020-01-14
Article (Journal)
Electronic Resource
English
DDC:
624
Wiley | 2018
|Carbon2Chem® – from Vision to Industrial Application
Wiley | 2024
|Carbon2Chem® – Technical Center in Duisburg
Wiley | 2018
|Carbon2Chem® – A Key Building Block for Climate Protection
Wiley | 2022
|