Analysis of supercritical CO2 brayton cycle system for laser inertial confinement fusion concept reactors

The large temperature difference between the PbLi and S-CO 2 cooling loops in a laser inertial confinement fusion reactor complicates efficient heat recovery and can degrade the performance of a conventional single-source power-conversion system. To address this issue, this study proposes a dual-heat-source recompression S-CO 2 Brayton cycle for a 200 MW laser inertial confinement fusion concept reactor. A lumped-parameter thermodynamic model was established to optimise the cycle configuration under given conditions. Subsequently, the resulting design parameters were applied to the VITARS model for steady-state validation and transient analysis. The optimized cycle achieved a thermal efficiency of 44.2%, with an S-CO 2 mass flow rate of 782.90 kg/s and a pressure range of 9.236-25.00 MPa. During a reduction in reactor power from 100% to 80%, the turbine output decreased smoothly to approximately 90 MW and the system reached a new steady state after about 8,000 s. A 5 K increase in cooling-water temperature increased the final mass flow rate by 2.02%. These results demonstrate that the proposed cycle can effectively couple the dual-temperature blanket heat sources, provide competitive thermo-economic performance, and maintain stable behavior under representative transient disturbances.

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Publication Details

Journal
Fusion Engineering and Design
Published
2026-09-30
DOI
https://doi.org/10.1016/j.fusengdes.2026.116075
Primary Topic
Laser-Plasma Interactions and Diagnostics
Type
article
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Analysis of supercritical CO2 brayton cycle system for laser inertial confinement fusion concept reactors

Wenxi Tian, Kui Zhang, Xinze Li, 张丙乾 et al.
Fusion Engineering and Design
Laser-Plasma Interactions and Diagnostics
article

Analysis of supercritical CO2 brayton cycle system for laser inertial confinement fusion concept reactors

Wenxi Tian, Kui Zhang, Xinze Li, 张丙乾, Ronghua Chen
article en

Abstract

The large temperature difference between the PbLi and S-CO 2 cooling loops in a laser inertial confinement fusion reactor complicates efficient heat recovery and can degrade the performance of a conventional single-source power-conversion system. To address this issue, this study proposes a dual-heat-source recompression S-CO 2 Brayton cycle for a 200 MW laser inertial confinement fusion concept reactor. A lumped-parameter thermodynamic model was established to optimise the cycle configuration under given conditions. Subsequently, the resulting design parameters were applied to the VITARS model for steady-state validation and transient analysis. The optimized cycle achieved a thermal efficiency of 44.2%, with an S-CO 2 mass flow rate of 782.90 kg/s and a pressure range of 9.236-25.00 MPa. During a reduction in reactor power from 100% to 80%, the turbine output decreased smoothly to approximately 90 MW and the system reached a new steady state after about 8,000 s. A 5 K increase in cooling-water temperature increased the final mass flow rate by 2.02%. These results demonstrate that the proposed cycle can effectively couple the dual-temperature blanket heat sources, provide competitive thermo-economic performance, and maintain stable behavior under representative transient disturbances.

Fusion Engineering and DesignVol. 233
State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University (CN)
Openalex Percentile: Top 14%
Laser-Plasma Interactions and Diagnostics
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Analysis of supercritical CO2 brayton cycle system for laser inertial confinement fusion concept reactors — Wenxi Tian, Kui Zhang, et al. · Fusion Engineering and Design (2026) | TGRS Research Map | TGRS