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DOE OSTI · 3374323

Development of a High-Efficiency Hybrid Dry Cooler System for sCO 2 Power Cycles in CSP Applications

Abstract

This project addressed a major gap in supercritical CO 2 (sCO 2 ) power cycle research by focusing on the pre-cooler, a component that had received little attention despite its significant impact on cycle efficiency and plant economics. The team developed a compact dry cooler using brazed/diffusion-bonded microchannel passages paired with formed air-side fins, advancing the technology from TRL-2 toward commercial readiness. Compared to conventional fin-tube coolers, the design cuts installation footprint by roughly half for 10+ MWth systems while achieving better heat transfer and lower approach temperatures, translating into a projected LCOE reduction from 6.04 ¢/kWh to between 5.85 and 5.94 ¢/kWh. While fabrication of an aluminum MW-scale prototype revealed brazing and sealing challenges at larger scales, lessons learned informed a subsequent 1 MWth unit that was successfully built and delivered for integration into Sandia's Gen3 Particle Pilot Plant, advancing the technology to TRL-7 with a path toward TRL-8 pending successful testing.

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BibTeXRIS

Katcher, Kelsi Marie [Southwest Research Institute, San Antonio, TX (United States)] (ORCID:0000000240803356), Amogne, Dereje [Vacuum Process Engineering, Sacramento, CA (United States)]. 2026-06-17. Development of a High-Efficiency Hybrid Dry Cooler System for sCO 2 Power Cycles in CSP Applications. https://doi.org/10.2172/3374323

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