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Design and performance evaluation of an innovative solar-nuclear complementarity power system using the S-CO_2 Brayton cycle

机译:使用S-CO_2布雷顿周期的创新太阳核互补电力系统的设计与性能评估

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摘要

In this paper, in order to deepen the grid penetration of solar energy, an innovative hybrid solar-nuclear complementarity power (SNCP) system using the supercritical CO_2 Brayton cycle is proposed. A solar tower thermal system and a small modular lead-cooled fast reactor (LFR) are coupled in this system. The KCl-MgCl_2 salt is chosen as both the heat transfer and energy storage materials for the solar energy block. The simulation model of the SNCP system is established by using the Ebsilon Professional code. Design point performance of the SNCP system is evaluated. The results demonstrate that the SNCP system has an incremental electric power of 77.6 MW compared with the standalone small LFR. The ratio of the incremental electric power to the total net electric power can be 31.1%. Moreover, the performance investigation of the SNCP system under the varying solar irradiance condition is conducted. The results reveal that with the solar irradiance increased, the net electric power and the ratio of the incremental electric power to the net electric power both increase. The SNCP system can operate stably under the pre-set modes and the operation behavior simulation results are in agreement with the pre-set operation strategy.
机译:在本文中,为了深化太阳能的电网渗透,提出了一种使用超临界CO_2布雷顿循环的创新的混合太阳能 - 核互补功率(SNCP)系统。太阳能塔热系统和小型模块化铅冷却快电抗器(LFR)在该系统中耦合。选择KCl-MgCl_2盐作为太阳能块的传热和储能材料。通过使用EBSILON专业代码建立了SNCP系统的仿真模型。评估SNCP系统的设计点性能。结果表明,与独立的小型LFR相比,SNCP系统的增量电力为77.6 mW。增量电力与总净电力的比率可以是31.1%。此外,进行了在不同的太阳辐照度条件下对SNCP系统的性能研究。结果表明,随着太阳辐照度的增加,净电力和增量电力与净电力的比率均增加。 SNCP系统可以在预设模式下稳定运行,并且操作行为仿真结果与预设操作策略一致。

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