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Compact fusion advanced Rankine (CFARII) power cycle-operating regimes

机译:紧凑型融合高级朗肯(CFARII)电源循环操作制度

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The performance (cost/kWe and efficiency) of generic compact fusion advanced Rankine (CFARII) power conversion is investigated for various working fluids, operating temperatures and pressures, and thermal power levels. Good CFARII performance is found for a remarkably broad range of materials, temperatures, pressures and power levels, which gives considerable flexibility to future design studies which may apply CFARII energy conversion to specific fusion energy sources such as ICF (inertial confinement fusion), MICF, and Mini-PACER. Specifically, in future designs that would apply CFARII power conversion to particular reactor designs, there is considerable flexibility to choose combinations of materials and operating conditions to accommodate other reactor design constraints, and therefore, a greater chance of finding a combination that meets all engineering and physics constraints while still achieving attractive efficiency and low cost. The economic robustness of CFARII is directly related to its extremely high mass power density, and the high efficiency ( eta /sub MHD/or approximately=50%) of CFARII relative to previous MHD (magnetohydrodynamic) generator design and experiments is due to the higher temperatures of 1 to 3 eV made possible by direct coupling of nuclear energy release to the working fluid material.
机译:对各种工作流体,操作温度和压力以及热功率水平研究了通用紧凑型融合高级朗肯(CFARII)功率转换的性能(成本/千维和效率)。良好的CFarii性能是针对广泛的材料,温度,压力和功率水平,对未来的设计研究提供了相当大的灵活性,这可能将CFarii能量转换应用于特定的融合能源,如ICF(惯性监禁融合),MICF,和迷你步行者。具体而言,在将来的设计将CFarii电力转换应用于特定的电抗器设计的设计中,选择材料和操作条件的组合具有相当大的灵活性,以适应其他反应堆设计限制,因此,找到满足所有工程和所有工程的组合的可能性更大。物理限制仍然达到有吸引力的效率和低成本。 CFarii的经济稳健性与其极高的质量功率密度直接相关,以及相对于先前MHD(磁流动动力学)发电机设计和实验的CFarii的高效率(ETA / Sub MHD / <或约= 50%)是由于通过直接耦合核能释放到工作流体材料,可以提高1至3e的温度。

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