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Thermodynamic analysis and performance trends of brayton cycles for nuclear combined heat and power applications

Research output: Contribution to journalArticlepeer-review

Abstract

Brayton cycles (BCs) are gaining renewed interest for use in high-temperature nuclear reactors for power production. This study explores the potential of nuclear Brayton systems in industrial combined heat and power (CHP) production. After a review of the historical deployment and technical development of BC systems for nuclear and cogeneration applications several BCs in CHP configurations are assessed when applied to representative high-temperature reactor types. The analysis emphasizes process heat delivery options, electrical efficiency, and component performance for the case of a direct cycle—Helium BC in a high temperature gas reactor, and an open-air Brayton cycle with a high temperature gas reactor. The results highlight thermodynamic trade-offs in cogeneration operation, particularly in recuperated configurations, and compare BC-based CHP with conventional Rankine cycle (RC) performance. Key findings suggest Helium BCs offer viable CHP performance primarily at lower process heat temperatures, with open air cycles being less efficient. The work also demonstrates trade-off between CHP performance and power production performance with a detailed comparison to where steam RC has better performance. The work is designed to be used as a reference work when cogeneration is proposed from high temperature reactors alongside the use of BCs.

Original languageEnglish
Article number109434
JournalEnergy Reports
Volume16
Early online dateJun 23 2026
DOIs
StateE-pub ahead of print - Jun 23 2026

Keywords

  • Brayton cycle
  • Combined heat and power
  • High temperature reactor
  • Nuclear power

INL Publication Number

  • INL/JOU-25-87303
  • 206047

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