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DOE OSTI · 2564979

Direct Air Capture and Utilization System (DACUS): FEED Study of CarbonCapture Inc. DAC and CarbonCure Utilization Technologies Using United States Steel’s Gary Works Plant Waste Heat

Abstract

The effects of climate change are drastically perceived through the alarming rates of severe events such as flooding, hurricanes, wildfires, global temperature rise, sea-level rise, and ocean acidification etc., which has prompted the nations across the globe to control & reduce greenhouse gas (GHG) emissions, by massive adoption of electric vehicles, switching to renewal energy sources and promoting sustainable green products. However, recent climate studies have shown that such efforts will not be enough to keep the global temperature rising under 1.5° Celsius by the year 2050, which lead to the development of multiple Direct Air Capture (DAC) technologies. A DAC system extracts CO2 directly from the atmosphere, which is either stored underground for long term or utilized in other processes. The DACUS proposed at U.S. Steel Corporation’s Gary Works Plant in Gary, Indiana, will include an innovative DAC technology from CarbonCapture Inc. (CCI), which will be collocated and powered by waste heat from the steel plant to capture CO2 from ambient air, and CarbonCure CO2 utilization technology- which is a commercial technology that is already installed and in use by early adopters in more than 150 concrete mixing plants across North America and Asia. The University of Illinois at Urbana Champaign spearheaded this Front-End Engineering Design (FEED) study project, which was funded by US Department of Energy (DOE), aimed at designing a state-of-the art DACU system that can remove minimum of 5,000 tonne/year net CO2 from air (based on cradle-to-gate LCA) and converting the captured CO2 into low carbon intensity products. The off takers of the low Carbon product produced by the DACUS have also been identified near the steel plant in the Indiana, Illinois & Wisconsin Region. This creates a full CO2 value chain and provides a means to assess the impact of this holistic approach on job creation, regional economic impact, and environmental justice. DACUS is a promising new technology for reducing greenhouse gas in the atmosphere. Operation costs are minimized by locating CCI’s innovative DAC collector at United States Steel's Gary Works site where waste heat is utilized. Carbon emissions are minimized in CO2 transportation. The captured CO2 will be permanently sequestered in concrete used as construction material. This DOE funded FEED study demonstrates a full CO2 value chain for a DACU system, supported by an industrial facility. If this project were constructed, it would have a very positive and lasting impact on both the environment and the community.

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BibTeXRIS

Varghese Kaleeckal, Bajio [University of Illinois at Urbana Champaign, Prairie Research Institute] (ORCID:000000034801878X), Gioja, Leslie [University of Illinois Urbana-Champaign, Prairie Research Institute] (ORCID:0009000532365623), OBrien, Kevin [University of Illinois Urbana-Champaign, Prairie Research Institute] (ORCID:0000000282251262), Giardinella, Sebastiano [University of Illinois at Urbana-Champaign, Prairie Research Institute] (ORCID:0000000282877636), Echeto, Maholy [University of Illinois at Urbana-Champaign, Prairie Research Institute], Prause, Scott [University of Illinois at Urbana-Champaign, Prairie Research Institute], Baroi, Chinmoy [University of Illinois at Urbana-Champaign, Prairie Research Institute] (ORCID:000000030346732X), Larimore, Ryan [University of Illinois at Urbana-Champaign, Prairie Research Institute], Kenny, Meghan [Carbon Capture Inc.], Baumeister, Alberto [Ecotek Engineering], Cail, Kevin [CarbonCure Technologies], Cialdella, Ryan [Ozinga], Petrilena, Brenda J. [United States Steel Corporation]. 2024-12-27. Direct Air Capture and Utilization System (DACUS): FEED Study of CarbonCapture Inc. DAC and CarbonCure Utilization Technologies Using United States Steel’s Gary Works Plant Waste Heat. https://www.osti.gov/biblio/2564979

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