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Vacuum powder feeding and dispersion analysis for a solar thermochemical drop-tube reactor

机译:太阳能热化学滴管式反应器的真空供粉和分散分析

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摘要

Ultrasonic vibratory and rotary valve particle feeders have been designed, constructed, and investigated for application to feeding reactant powder to a solar thermochemical drop-tube reactor. Zinc oxide and carbon particles are fed continuously to the drop-tube under vacuum pressures as low as 1 mbar. The particles are probed in situ by laser transmission measurements with the aim to characterize particle residence time, axial and radial dispersion as a function of operating pressure. The ultrasonic feeder disperses particles well and can be operated at mass flow rates in the range of 57-288 mg min(-1). The rotary valve feeder operates in the mass flow range of 3.46-41.96 g min(-1) and exhibits reduced particle dispersion due to discrete pulsing mass flow created from the rotating valve. The time resolved transmission signals reflect characteristic changes under different experimental vacuum conditions. Particles traveling through the measurement zone at 1 mbar exhibit residence and clearance times of 0.05 s and 0.52 s, respectively. At 960 mbar, residence and clearance times are increased to as much as 0.16 s and 3.98 s, respectively. Particles falling at 1 mbar show radial dispersion three times less than those falling under ambient pressure. A critical result of the functional characterization of powder feeding under vacuum is a potential reaction capacity limitation at low vacuum pressures due to short particle residence time and narrow axial dispersion. (C) 2016 Elsevier Ltd. All rights reserved.
机译:超声波振动和旋转阀颗粒进料器已经设计,构造和研究,可用于将反应物粉末进料到太阳能热化学滴管反应器中。氧化锌和碳颗粒在低至1 mbar的真空压力下连续供入滴管。通过激光透射测量对粒子进行原位探测,目的是表征作为工作压力的函数的粒子停留时间,轴向和径向色散。超声进料器可以很好地分散颗粒,并且可以在57-288 mg min(-1)范围内的质量流量下运行。旋转阀进料器在3.46-41.96 g min(-1)的质量流量范围内运行,并且由于旋转阀产生的离散脉冲质量流量而显示出减小的颗粒分散。时间分辨的传输信号反映了不同实验真空条件下的特性变化。在1毫巴下通过测量区的颗粒的停留时间和清除时间分别为0.05 s和0.52 s。在960 mbar时,停留时间和清除时间分别增加到0.16 s和3.98 s。落在1 mbar的颗粒显示出的径向分散度是落在环境压力下的颗粒的三倍。粉末进料在真空下的功能表征的关键结果是由于短的颗粒停留时间和窄的轴向分散性,在低真空压力下潜在的反应能力限制。 (C)2016 Elsevier Ltd.保留所有权利。

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