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Investigation and modeling of CPC based tubular photocatalytic reactor for scaled-up hydrogen production

机译:基于CPC的管式光催化反应器用于规模化制氢的研究与建模

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The tubular reactor combined with compound parabolic collector (CPC) has been proposed to be a potential choice for large-scale photocatalytic hydrogen production. However, comprehensive study and modeling of hydrodynamic and resultant radiation absorption properties for such reactors is rare, which should be of valuable guidance for the scaled-up of the technology. In this study, catalyst-liquid two phase flow within the reactor was studied via CFD. Under the studied condition, inlet velocity above 0.06 m s(-1) and particle size below 10 gm is recommended for keeping well suspended particulate slurry. For the investigation of the radiation absorption, the radiation distribution onto the external reactor surface was firstly simulated using ray tracing algorithm considering CPC's geometry. The radiation was then introduced into the inner part of the tubular reactor considering the photocatalyst distribution. Using a modified differential approximation method, 2D radiation distribution within the tubular reactor was obtained. Interestingly, it was found that specific catalyst concentration gradient resulted from sluggish flow velocity or large particle size is beneficial for radiation absorption enhancement within the reactor. Under the desired CPC configuration, the dependence of system energy output on the catalyst loading and flow rate has been evaluated. As long as the particle can be well suspended, lower flow rate is always favored. Our modeling theoretically predicts that catalyst loading of higher than 1 g L-1, even up to 16 g L-1 will not lead to significant increase of power density, which is in well agreement with the widely accepted experimental findings. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:已提出将管式反应器与复合抛物线收集器(CPC)结合使用是大规模光催化制氢的潜在选择。但是,此类反应堆的流体动力学特性和由此产生的辐射吸收特性的综合研究和建模是很少的,这对于技术的规模推广应具有宝贵的指导意义。在该研究中,通过CFD研究了反应器内的催化剂-液体两相流。在研究条件下,建议使用入口速度高于0.06 m s(-1)且粒度小于10 gm的颗粒,以保持良好的悬浮颗粒状浆料。为了研究辐射吸收,首先使用考虑了CPC几何形状的射线追踪算法模拟了反应堆外部辐射的分布。然后考虑到光催化剂的分布,将辐射引入到管式反应器的内部。使用改进的微分近似方法,获得了管状反应器内的二维辐射分布。有趣的是,发现由缓慢的流速或大的粒径引起的特定催化剂浓度梯度有利于提高反应器内的辐射吸收。在所需的CPC配置下,已经评估了系统能量输出对催化剂负载量和流速的依赖性。只要可以很好地悬浮颗粒,总是希望使用较低的流速。我们的模型从理论上预测,催化剂负载量高于1 g L-1,甚至高达16 g L-1,都不会导致功率密度的显着提高,这与被广泛接受的实验结果完全吻合。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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