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Selecting the best piping arrangement for scaling-up an annular channel reactor: An experimental and computational fluid dynamics study

机译:选择最佳的管道布置以放大环形通道反应器:一项实验和计算流体动力学研究

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This study is focused on the selection of the best piping arrangement for a pilot scale annular channel reactor intended for the remediation of waters and wastewaters. Two annular channel reactors composed of a single UV lamp and distinct piping arrangements were considered: (i) a novel reactor with tangential inlet/outlet pipes the FluHelik reactor, and (ii) a conventional Jets reactor. These two reactors were manufactured at lab scale and characterized in terms of residence time distribution (RTD), radiant power and ability to degrade aqueous solutions spiked with a model compound - 3-amino-5-methylisoxazole (AMI) - by H2O2/UVC and UVC processes. Computational fluid dynamics (CFD) simulations were used to assess the hydrodynamics, RID and UV radiation intensity distribution of both reactors at pilot scale. In general, experimental results at lab scale revealed quite similar RTDs, radiant powers and AMI degradation rates for both reactors. On the other hand. CFD simulations at pilot scale revealed the generation of a helical motion of fluid around the UVC lamp in the FluHelik reactor, inducing: (i) a longer contact time between fluid particles and UV light, (ii) more intense dynamics of macromixing as a result of larger velocity gradients, turbulent intensities and dispersion of RID values around the peak, and (iii) a more homogeneous UV radiation distribution. In addition, the design of the FluHelik reactor can favor the implementation of various reactors in series, promoting its application at industrial scale. The FluHelik reactor was chosen for scaling-up. A pre-pilot scale treatment unit containing this reactor was constructed and its feasibility was proven. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项研究的重点是为用于修复水和废水的中试环形通道反应器选择最佳的管道布置。考虑了由单个UV灯和不同管道布置组成的两个环形通道反应器:(i)带有切向进/出管的新型反应器FluHelik反应器,以及(ii)传统的Jets反应器。这两个反应器都是在实验室规模生产的,其特征在于停留时间分布(RTD),辐射功率和降解模型化合物(3-氨基-5-甲基异恶唑(AMI))加氢过氧化氢/紫外线和水的能力。 UVC工艺。计算流体动力学(CFD)模拟用于评估两个反应堆在试验规模下的流体动力学,RID和UV辐射强度分布。通常,实验室规模的实验结果表明,两个反应堆的RTD,辐射功率和AMI降解率都非常相似。另一方面。在中试规模的CFD模拟中,流体在FluHelik反应器中的UVC灯周围产生了螺旋运动,从而引起:(i)流体颗粒与UV光之间的接触时间更长;(ii)结果,宏观混合的动力学更加强烈较大的速度梯度,湍流强度和峰周围的RID值分散,以及(iii)更均匀的UV辐射分布。此外,FluHelik反应堆的设计可以有利于串联实现各种反应堆,从而促进其在工业规模上的应用。选择了FluHelik反应器进行放大。建造了一个装有该反应器的中试规模处理装置,并证明了其可行性。 (C)2019 Elsevier B.V.保留所有权利。

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