Life Cycle Assessment of Direct Air Carbon Capture and Storage with Low-Carbon Energy Sources

Оценка жизненного цикла прямого улавливания и хранения углерода из атмосферного воздуха с использованием низкоуглеродных источников энергии
Christian Bauer, Marco Mazzotti, Tom Terlouw, Karin Treyer
2021-08-05

carbon dioxide removaldirect air carbon capture and storagegreenhouse gas emissionslife cycle assessmentlow-carbon energy sources
High Resolution Image Download MS PowerPoint Slide Direct air carbon capture and storage (DACCS) is an emerging carbon dioxide removal technology, which has the potential to remove large amounts of CO 2 from the atmosphere. We present a comprehensive life cycle assessment of different DACCS systems with low-carbon electricity and heat sources required for the CO 2 capture process, both stand-alone and grid-connected system configurations. The results demonstrate negative greenhouse gas (GHG) emissions for all eight selected locations and five system layouts, with the highest GHG removal potential in countries with low-carbon electricity supply and waste heat usage (up to 97%). Autonomous system layouts prove to be a promising alternative, with a GHG removal efficiency of 79–91%, at locations with high solar irradiation to avoid the consumption of fossil fuel-based grid electricity and heat. The analysis of environmental burdens other than GHG emissions shows some trade-offs associated with CO 2 removal, especially land transformation for system layouts with photovoltaics (PV) electricity supply. The sensitivity analysis reveals the importance of selecting appropriate locations for grid-coupled system layouts since the deployment of DACCS at geographic locations with CO 2 -intensive grid electricity mixes leads to net GHG emissions instead of GHG removal today.
1
A comprehensive life cycle assessment evaluates five DACCS layouts across eight locations using low-carbon electricity and heat, including standalone and grid-connected configurations.
2
All assessed systems achieve negative greenhouse-gas emissions, with removal efficiencies reaching up to 97% where electricity is low-carbon and waste heat is available.
3
Autonomous solar-based DACCS systems achieve 79–91% GHG removal efficiency in locations with high solar irradiation by avoiding fossil-fuel-based grid electricity and heat.
4
DACCS creates environmental trade-offs beyond GHG emissions, particularly increased land transformation for photovoltaic-based electricity supply.
5
Location selection is critical for grid-connected DACCS: deployment in regions with carbon-intensive electricity mixes can produce net GHG emissions rather than remove them.

Direct air carbon capture and storage (DACCS) systems powered by low-carbon energy sources

life-cycle environmental impacts, greenhouse-gas removal efficiency, trade-offs, and location sensitivity of DACCS systems under different energy sources and system layouts

Publication Details
Publication Date
2021-08-05
Journal
Publisher
ISSN
Cited by
298
Access Type
Author Information
Authors
Christian Bauer
Marco Mazzotti
Tom Terlouw
Karin Treyer
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%