Emergency deployment of direct air capture as a response to the climate crisis
Экстренное развертывание прямого улавливания углекислого газа из атмосферного воздуха в ответ на климатический кризис
2021-01-14
SCID: 54.1/36ur8dxq
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carbon dioxide removalclimate impactsdirect air captureemergency climate policynegative emissions
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Abstract (AI)
Abstract Though highly motivated to slow the climate crisis, governments may struggle to impose costly polices on entrenched interest groups, resulting in a greater need for negative emissions. Here, we model wartime-like crash deployment of direct air capture (DAC) as a policy response to the climate crisis, calculating funding, net CO 2 removal, and climate impacts. An emergency DAC program, with investment of 1.2–1.9% of global GDP annually, removes 2.2–2.3 GtCO 2 yr –1 in 2050, 13–20 GtCO 2 yr –1 in 2075, and 570–840 GtCO 2 cumulatively over 2025–2100. Compared to a future in which policy efforts to control emissions follow current trends (SSP2-4.5), DAC substantially hastens the onset of net-zero CO 2 emissions (to 2085–2095) and peak warming (to 2090–2095); yet warming still reaches 2.4–2.5 °C in 2100. Such massive CO 2 removals hinge on near-term investment to boost the future capacity for upscaling. DAC is most cost-effective when using electricity sources already available today: hydropower and natural gas with renewables; fully renewable systems are more expensive because their low load factors do not allow efficient amortization of capital-intensive DAC plants.
Key Findings
1
An emergency DAC program requiring 1.2–1.9% of global GDP annually could remove 2.2–2.3 GtCO₂ per year by 2050 and 13–20 GtCO₂ per year by 2075.
2
Compared with SSP2-4.5, emergency DAC advances net-zero CO₂ emissions to 2085–2095 and peak warming to 2090–2095, but 2100 warming remains 2.4–2.5°C.
3
DAC is most cost-effective when powered by currently available hydropower and natural gas combined with renewables; fully renewable systems cost more because of low capacity factors.
4
The modeled program removes 570–840 GtCO₂ cumulatively from 2025–2100, provided near-term investment enables large-scale future deployment.
5
The study models wartime-like emergency deployment of direct air capture as a policy response to insufficiently ambitious climate action.
Research Object
wartime-like emergency deployment of direct air capture (DAC) systems for atmospheric CO2 removal
Research Subject
the funding requirements, CO2-removal capacity, climate impacts, scaling dynamics, and cost-effectiveness of emergency DAC deployment under alternative electricity-supply configurations
Publication Details
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2021-01-14
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References available in scid.ai3
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Energy, land-use and greenhouse gas emissions trajectories under a green growth paradigm2016