Techno-economic assessment of CO2 direct air capture plants
Технико-экономическая оценка установок прямого улавливания CO₂ из воздуха
2019-03-14
SCID: 54.1/err37qt2
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PV-Wind-battery systemscarbon capture costsdirect air capturelow-temperature solid sorbentstechno-economic assessment
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Abstract (AI)
CO 2 direct air capture (DAC) has been increasingly discussed as a climate change mitigation option. Despite technical advances in the past decade, there are still misconceptions about DAC's current and long-term costs as well as energy, water and area demands. This could undermine DAC's anticipated role in a neutral or negative greenhouse gas emission energy system, and influence policy makers. In this study, a literature review and techno-economic analyses of state-of-the-art DAC technologies are performed, wherein, DAC technologies are categorised as high temperature aqueous solutions (HT DAC) and low temperature solid sorbent (LT DAC) systems, from an energy system perspective. DAC capital expenditures, energy demands and costs have been estimated under two scenarios for DAC capacities and financial learning rates in the period 2020 to 2050. DAC system costs could be lowered significantly with commercialisation in the 2020s followed by massive implementation in the 2040s and 2050s, making them cost competitive with point source carbon capture and an affordable climate change mitigation solution. It is concluded that LT DAC systems are favourable due to lower heat supply costs and the possibility of using waste heat from other systems. CO 2 capture costs of LT DAC systems powered by hybrid PV-Wind-battery systems for Moroccan conditions and based on a conservative scenario, without/with utilisation of free waste heat are calculated at 222/133, 105/60, 69/40 and 54/32 €/t CO2 in 2020, 2030, 2040 and 2050, respectively. These new findings could enhance DAC's role in a successful climate change mitigation strategy.
Key Findings
1
Commercialization in the 2020s followed by large-scale deployment in the 2040s and 2050s could substantially reduce DAC costs, making them competitive with point-source carbon capture.
2
DAC costs, capital expenditures, and energy demands are projected under alternative capacity and financial-learning scenarios from 2020 to 2050.
3
Low-temperature DAC is favored because of lower heat-supply costs and the potential to use waste heat from other systems.
4
The study reviews and techno-economically evaluates state-of-the-art direct air capture technologies, distinguishing high-temperature aqueous and low-temperature solid-sorbent systems.
5
Under conservative Moroccan PV-wind-battery conditions, low-temperature DAC capture costs decrease from 222/133 €/t CO2 without/with free waste heat in 2020 to 54/32 €/t CO2 in 2050.
Research Object
CO2 direct air capture plants, including high-temperature aqueous-solution and low-temperature solid-sorbent systems
Research Subject
The techno-economic performance of DAC systems, including capital expenditures, energy, water and area demands, capture costs, cost reduction through commercialisation and learning, and competitiveness under different capacity and financial scenarios from 2020 to 2050
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2019-03-14
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