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Integration of CFD and RTD analysis in flow pattern and mixing behavior of rotary pressure exchanger with extended angle

机译:CFD和RTD分析在大角度旋转压力交换器的流型和混合行为中的集成

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In this study, the computational fluid dynamics (CFD) approach combined with the residence time distribution (RTD) analysis was implemented to examine the mixing performance and flow pattern of rotary pressure exchanger (RPE). Based on oscillatory Reynolds number, a flow regime classification was established for RPE. A concept of extended angle of RPE was proposed, and then, its effects on mixing behavior were evaluated by CFD simulation in laminar model. Meanwhile, flow pattern in RPE was quantified by RTD study, and was well captured in the flow field analysis. In addition, the effects of operating conditions on the mixing and flow pattern were discussed. According to the results, it was shown that the extended angle of RPE is beneficial for mixing control, and a minimum volumetric mixing rate was achieved when the extended angle is +/- 30 degrees compared with other configurations. In different operating conditions, the mixing rate was minimized at an oscillatory Reynolds number of about 178. Moreover, the smaller RTD variance, the closer was the flow pattern to an ideal plug flow, leading to a lower volumetric mixing rate of RPE. This study indicates that the RTD and CFD simulation are capable for mixing study and flow analysis in RPE device, and they are complementary and verifiable with each other.
机译:在这项研究中,计算流体动力学(CFD)方法与停留时间分布(RTD)分析相结合,用于检查旋转压力交换器(RPE)的混合性能和流型。基于振荡雷诺数,建立了RPE的流态分类。提出了RPE扩展角度的概念,然后在层流模型中通过CFD仿真评估了其对混合行为的影响。同时,通过RTD研究对RPE中的流型进行了定量分析,并在流场分析中很好地捕获了流型。此外,还讨论了操作条件对混合和流动模式的影响。根据结果​​,表明RPE的扩展角度有利于混合控制,并且与其他构造相比,当扩展角度为+/- 30度时,实现了最小体积混合速率。在不同的操作条件下,在约178的振荡雷诺数下,混合速率被最小化。而且,RTD的变化越小,流型就越接近理想的塞流,从而导致RPE的体积混合率降低。这项研究表明,RTD和CFD仿真能够在RPE设备中进行混合研究和流量分析,并且它们是相互补充和可验证的。

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