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
David G. Victor, Yangyang Xu, Ahmed Abdulla, Ryan Hanna
2021-01-14

carbon dioxide removalclimate impactsdirect air captureemergency climate policynegative emissions
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.
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.

wartime-like emergency deployment of direct air capture (DAC) systems for atmospheric CO2 removal

the funding requirements, CO2-removal capacity, climate impacts, scaling dynamics, and cost-effectiveness of emergency DAC deployment under alternative electricity-supply configurations

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2021-01-14
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Authors
David G. Victor
Yangyang Xu
Ahmed Abdulla
Ryan Hanna
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