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Hydrodynamics of Dense Fluidized Beds for Application in Concentrated Solar Energy Conversion

机译:密集型流化床中密集流化床的流体力学

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In the frame of the call for projects of the European Commission which aims to find alternative HTF in order to extend working temperature and to decrease environmental impact of standard Heat Transfer Fluid (HTF) used in concentrating solar power(CSP) plants, we proposed to use Dense Particle Suspensions -DPS- fluidized with air (approximately 50% of solid) in tubes as new HTF. DPS will enable operating temperature over 1 000 °C which corresponds to the sintering temperatures of the solid against 560 °C for the most efficient molten salts, thus increasing the plant efficiency and decreasing the cost per kWh produced, have no lower limitation of temperature and are riskless. A cold mockup of receiver using DPS has been built for the preliminary study of the concept. The operation of the mockup has shown the possibility to ensure a regular and adaptable upward flow of solid in the range 10 to 65 kg · h~(-1) per tube. This paper compares the experimental results of the cold mockup running with the predictions of a multi-fluid approach 3D numerical code.
机译:在欧洲委员会的项目征集框架中,该项目旨在寻找替代的HTF,以提高工作温度并减少用于聚光太阳能发电(CSP)厂的标准传热流体(HTF)的环境影响。在管道中使用空气(约占固体的50%)流化的致密颗粒悬浮液-DPS-作为新的HTF。 DPS可使工作温度超过1000°C,这对应于最有效的熔融盐的固体烧结温度与560°C的对应温度,从而提高了工厂效率并降低了每千瓦时的成本,并且对温度和温度的限制不低。没有风险。已经建立了使用DPS的接收器冷样机,以对该概念进行初步研究。样机的操作已显示出有可能确保每管10-65 kg·h〜(-1)范围内的固体有规律且适应性地向上流动。本文将冷样机运行的实验结果与多流体方法3D数值代码的预测进行了比较。

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