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受控核聚变超临界二氧化碳循环发电系统设计

Design of Supercritical Carbon Dioxide Cycle Power-Generation System for Controlled Nuclear Fusion

  • 摘要:
    目的 受控核聚变能被视作人类的终极能源。热力发电是受控核聚变能最重要的能量转换与利用方式之一,安全、高效、灵活的热力发电技术对聚变技术的商业化应用具有重要意义。
    方法 针对超导托卡马克反应堆磁约束聚变能发电场景,以1000 MW聚变功率为设计目标,构建并分析与反应堆包层、偏滤器导出热量相匹配的超临界二氧化碳(Supercritical Carbon Dioxide,以下简称S-CO2)循环,包含简单回热循环、分流再压缩循环、简化分流再压缩循环以及上述不同循环的联合运行模式。为提升受控核聚变发电的灵活性,进一步引入储热与循环模式切换策略,改善系统调峰发电性能。
    结果 研究表明:基荷发电工况下,适宜采用包层-偏滤器双热源简单回热S-CO2循环与偏滤器单热源简化分流再压缩S-CO2循环的联合方案,系统发电功率为176.6 MW,发电效率为35.3%;调峰发电工况下,谷、平、峰时段循环依次切换为包层单热源分流再压缩S-CO2循环、双热源简单回热S-CO2循环、双热源简单回热S-CO2循环与偏滤器单热源简化分流再压缩S-CO2循环的联合方案;在储热协同作用下,可实现147.4 MW、168.0 MW、209.9 MW三档发电功率输出,系统日平均发电效率为35.0%。
    结论 S-CO2循环可适用于托卡马克受控核聚变能量转换系统,且能够实现灵活调节,适配未来托卡马克聚变技术的发展演进。

     

    Abstract:
    Objective Controlled nuclear fusion energy is regarded as the ultimate energy source of mankind. Thermal power generation is one of the most important energy conversion and utilization methods for controlled nuclear fusion energy. Safe, efficient and flexible thermal power generation technologies are of great significance to the commercial application of fusion technology.
    Method Focusing on the magnetic confinement fusion power generation of superconducting Tokamak reactors, supercritical carbon dioxide (S-CO2) cycles matching the heat exported by the reactor blanket and divertor were constructed and analyzed with a design fusion power of 1000 MW. The investigated cycles included the simple regenerative cycle, the split recompression cycle, the simplified split recompression cycle, and the combined operation of different cycles. To improve the flexibility of controlled nuclear fusion power generation, thermal energy storage and cycle mode switching strategies were further adopted to enhance the peak shaving performance of the system.
    Result The results show that, under base-load operating conditions, the combined scheme of a double-heat-source simple regenerative S-CO2 cycle (blanket and divertor) and a divertor single-heat-source simplified split recompression S-CO2 cycle is applicable. The system achieves a net power output of 176.6 MW and a power generation efficiency of 35.3%. For peak-shaving operating conditions, the cycles corresponding to valley, flat and peak periods are switched to a blanket single-heat-source split recompression S-CO2 cycle, a double-heat-source simple regenerative S-CO2 cycle, and a combined cycle of double-heat-source simple regenerative S-CO2 cycle and divertor single-heat-source simplified split recompression S-CO2 cycle, respectively. With the coordination of thermal energy storage, the system can realize three power levels of 147.4 MW, 168.0 MW and 209.9 MW, with a daily average power generation efficiency of 35.0%.
    Conclusion The S-CO2 cycle is suitable for the energy conversion system of Tokamak controlled nuclear fusion, and it can be flexibly regulated to adapt to the technological evolution of future Tokamak fusion systems.

     

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