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Thermodynamic assessment of a hybrid particle-based concentrated solar power plant using fluidized bed heat exchanger

机译:使用流化床换热器的混合型基于颗粒的集中式太阳能发电厂的热力学评估

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摘要

In this study, we modify a practical hybrid system developed by National Renewable Energy Laboratory (NREL) and analyze it thermodynamically through energy and exergy methods for analysis, performance assessment and evaluation purposes. In this system, the solid particles are used as the direct heat transfer medium in solar receiver, thermal energy storage and fluidized bed heat exchanger. Furthermore, the hydrodynamic aspects of the fluidized bed (FB) are conducted to reveal the pressure drop and the fluidizing-gas compression power as two important factors in the FB consideration. The present results show that a application of the particle FB heat exchanger in the Rankine power cycle and the pressurized fluidized bed combustion (PFBC) in the air Brayton cycle enable the whole solar plant performance to achieve the energy and the exergy efficiencies of 50% and 53.8% respectively. In addition, the particle energy storage and the solar tower sub-systems potentially can achieve the high energy efficiencies up to 88% and 44.2% and the exergy efficiencies of 96% and 35.1%, respectively. Moreover, highest exergy destructions take place in the PFBC due to chemical reaction and heliostat field and particle receiver due to the high-temperature gradients.
机译:在这项研究中,我们修改了由国家可再生能源实验室(NREL)开发的实用混合系统,并通过能量和火用方法对其进行了热力学分析,以进行分析,性能评估和评估。在该系统中,固体颗粒被用作太阳能接收器,热能存储和流化床热交换器中的直接传热介质。此外,进行了流化床(FB)的流体力学方面的研究,揭示了压降和流化气体压缩功率是FB考虑中的两个重要因素。目前的结果表明,将粒子FB换热器应用于Rankine功率循环中以及将加压流化床燃烧(PFBC)应用于空气Brayton循环中,可使整个太阳能发电厂的性能达到50%的能量和火用效率。分别为53.8%。此外,粒子能量存储和太阳能塔子系统可能分别实现高达88%和44.2%的高能效以及96%和35.1%的火用效率。此外,由于化学反应和定日镜场以及由于高温梯度产生的粒子接收器,PFBC中发生的最大火用破坏。

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