Integrating climate and physical constraints into assessments of net capture from direct air capture facilities

被引:0
作者
Shorey, Patrick [1 ,2 ]
Abdulla, Ahmed [1 ]
机构
[1] Carleton Univ, Dept Mech & Aerosp Engn, Ottawa, ON K1S 5B6, Canada
[2] Nat Resources Canada, CanmetENERGY Ottawa, Ottawa, ON K1A 1M1, Canada
关键词
carbon dioxide removal; direct air capture; deep decarbonization; process modeling; ENERGY; CO2;
D O I
10.1073/pnas.2410824121
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Limiting climate change to targets enshrined in the Paris Agreement will require both deep decarbonization of the energy system and the deployment of carbon dioxide removal at potentially large scale (gigatons of annual removal). Nations are pursuing direct air capture to compensate for inertia in the expansion of low-carbon energy systems, decarbonize hard-to-abate sectors, and address legacy emissions. Global assessments of this technology have failed to integrate factors that affect net capture and removal cost, including ambient conditions like temperature and humidity, as well as emission factors of electricity and natural gas systems. We present an integrated assessment of the global deployment potential of this technology. Employing a chemical process model, climate data, grid emission factors, and fugitive methane emission factors, we predict critical performance metrics, including carbon dioxide capture rates, and water-, energy-, and emissions-intensity of capture. Our results support investors and policy makers as they site facilities and develop credible policy instruments to support expansion.
引用
收藏
页数:6
相关论文
共 27 条
[1]   Technical note: The CAMS greenhouse gas reanalysis from 2003 to 2020 [J].
Agusti-Panareda, Anna ;
Barre, Jerome ;
Massart, Sebastien ;
Inness, Antje ;
Aben, Ilse ;
Ades, Melanie ;
Baier, Bianca C. ;
Balsamo, Gianpaolo ;
Borsdorff, Tobias ;
Bousserez, Nicolas ;
Boussetta, Souhail ;
Buchwitz, Michael ;
Cantarello, Luca ;
Crevoisier, Cyril ;
Engelen, Richard ;
Eskes, Henk ;
Flemming, Johannes ;
Garrigues, Sebastien ;
Hasekamp, Otto ;
Huijnen, Vincent ;
Jones, Luke ;
Kipling, Zak ;
Langerock, Bavo ;
McNorton, Joe ;
Meilhac, Nicolas ;
Noel, Stefan ;
Parrington, Mark ;
Peuch, Vincent-Henri ;
Ramonet, Michel ;
Razinger, Miha ;
Reuter, Maximilian ;
Ribas, Roberto ;
Suttie, Martin ;
Sweeney, Colm ;
Tarniewicz, Jerome ;
Wu, Lianghai .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2023, 23 (06) :3829-3859
[2]  
[Anonymous], 2021, The Long-Term Strategy of the United States: Pathways to Net-Zero Greenhouse Gas Emissions by 2050
[3]  
[Anonymous], 2023, Energy Transition Outlook 2023 TRANSPORT IN TRANSITION
[4]  
[Anonymous], 2022, Intergovernmental Panel on Climate Change, DOI [DOI 10.1017/9781009157926, 10.1017/9781009157926]
[5]  
[Anonymous], U.S. Energy Information Administration. Accessed at: https://www.eia.gov/dnav/ng/hist/n3035ok3m.htm September, 2018.
[6]   The performance of solvent-based direct air capture across geospatial and temporal climate regimes [J].
Brooks, Bjorn-Gustaf J. ;
Geissler, Caleb H. ;
An, Keju ;
Mccoy, Sean T. ;
Middleton, Richard S. ;
Ogland-Hand, Jonathan D. .
FRONTIERS IN CLIMATE, 2024, 6
[7]  
C3s, 2018, ECMWR
[8]  
Carbon Footprint Ltd, 2023, International Electricity Factors
[9]   The Futility of Relative Methane Reduction Targets in the Absence of Measurement-Based Inventories [J].
Conrad, Bradley M. ;
Tyner, David R. ;
Johnson, Matthew R. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2023, 57 (50) :21092-21103
[10]   A measurement-based upstream oil and gas methane inventory for Alberta, Canada reveals higher emissions and different sources than official estimates [J].
Conrad, Bradley M. ;
Tyner, David R. ;
Li, Hugh Z. ;
Xie, Donglai ;
Johnson, Matthew R. .
COMMUNICATIONS EARTH & ENVIRONMENT, 2023, 4 (01)