The historical agreement on international climate change at COP21 in Paris in December 2015 by 196 nations has accelerated the efforts to lower impact on climate change. The agreement contains the ambitious long-term global goal to limit global warming to "well below 2°C above pre-industrial levels and to pursue efforts to limit the temperature increase to 1.5°C". The International Energy Agency (IEA) has clearly stated that limiting global temperature rise to 2°C will require the energy sector to deploy carbon capture and storage (CCS). Hence, CO2 capture and suitable CO2 utilization option should be explored.
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Singh P., Geuzebroek F., 2017, Guideline for Development of CO2 Capture, Transport and EOR Integrated System for UAE, SPE
Global Roadmap for Implementing CO2 utilization, ICEF, 2016
S. J. Michael, Anderson M., 2012, The Development of Models for Carbon Dioxide Reduction Technologies for Spacecraft Air Revitalization, American Institute of Aeronautics and Astronautics
National Hydrogen Roadmap, 2018, CSIRO
Integrated High-Temperature Electrolysis and Methanation for Effective Power to Gas Conversion (HELMETH), 2018; Deliverable 4.2: Report on the overall system design and operational tests of the combined system
G. Manuel, L. Jonathan, M. Friedemann, Koch A. D., Graf F., B. Siegfried, R. Rainer, K. Thomas, 2016, Renewable Power-to-Gas: A technological and economic review Renewable Energy, 85, 1371–1390
R. Youssef, Bouallou C., 2013, Valorization of carbon dioxide by co-electrolysis of CO2/H2O at high temperature for syngas production, Energy Procedia, 37, 6667 – 6678
M. Michael, A. Mahdi, D. Yasar, 2015 Technoeconomics and Sustainability of Renewable Methanol and Ammonia Productions Using Wind Power-based Hydrogen, Journal of Advanced Chemical Engineering, Volume 5; Issue 3
P-F. Mar, Schöneberger J. C., Boulamanti A., Tzimas E., 2016, Methanol synthesis using captured CO2 as raw material: Techno-economic and environmental assessment, Applied Energy, 161, 718–732
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