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Structural and Parametric Optimization of S-CO2 Nuclear Power Plants
Nikolay Rogalev1, Andrey Rogalev2, Vladimir Kindra2
1Department of Thermal Power Plants, National Research University "Moscow Power Engineering Institute", 111250 Moscow, Russia.
Supercritical carbon dioxide (S-CO2) power cycles offer enhanced efficiency and safety for nuclear power plants. Transitioning to S-CO2 Brayton cycles is beneficial above 455°C due to superior regeneration.
Area of Science:
- Nuclear Engineering
- Thermodynamics
- Energy Systems
Background:
- Supercritical carbon dioxide (S-CO2) is a promising working fluid for advanced power generation.
- S-CO2 cycles offer potential advantages in terms of efficiency, component size, and environmental safety compared to traditional cycles.
- Nuclear power plants are exploring S-CO2 technology for improved performance and sustainability.
Purpose of the Study:
- To perform structural and parametric optimization of S-CO2 nuclear power plants.
- To determine the feasibility and benefits of transitioning from a water-based Rankine cycle to an S-CO2 Brayton cycle.
- To identify the optimal operating conditions for S-CO2 cycles in nuclear applications.
Main Methods:
- Mathematical modeling and simulation of S-CO2 power cycles.
- Comparative analysis of Rankine (water) and Brayton (S-CO2) cycles.
- Parametric studies to optimize plant efficiency and component design.
Main Results:
- The transition to an S-CO2 working fluid for the BREST-OD-300 reactor increased efficiency from 39.8% to 43.1%.
- S-CO2 power generation units can achieve significant reductions in equipment size.
- The S-CO2 Brayton cycle with recompression is advantageous over the Rankine cycle at working fluid temperatures exceeding 455°C.
Conclusions:
- Implementing S-CO2 technology in nuclear power plants enhances electricity production efficiency and environmental safety.
- The S-CO2 Brayton cycle's superior regeneration system makes it a viable and efficient alternative to the Rankine cycle at higher temperatures.
- Optimization of S-CO2 cycles is crucial for maximizing energy output and realizing the full potential of this technology in nuclear energy.
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