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A Study of the Flow Patterns Between Two Corrugated Plates With an Egg-Carton Configuration

机译:具有蛋壳配置的两个波纹板之间的流动模式研究

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Enhancing mixing in heat exchangers for low Re regimes is vital. A better mixing may be achieved by using corrugated plates. In this work, the flow patterns between corrugated plates with a novel egg-carton geometry were studied. Three-dimensional (3D) numerical models were developed for the steady laminar flow between two corrugated plates having 180 deg or 0 deg phase angles. The Reynolds number (Re <= 600) was defined as a function of the average distance between the corrugated plates. The numerical models were strictly developed and corroborated to achieve global convergence, local convergence, and grid-size independence. For both phase angles, it was determined that "close recirculations" decrease in size downstream and finally disappear becoming "open recirculations" due to the flow developing characteristics; the secondary flow regions were found to grow downstream; interestingly, increments on the Reynolds number favor recirculation growth and early flow detachment; the behavior and geometry of the recirculation were in line with previous flow visualization results. The recirculations were determined to be z-symmetric with respect to the channel center only for the 180 deg model. The recirculations in the 0 deg model were smaller and became "open recirculations" earlier than in the 180 deg model. Convex geometries on the transversal direction were found to favor detachment, while concave geometries inhibit it. The capability of the numerical methods to track flow paths in any direction showed a complex three-dimensional flow causing 3D-interaction among secondary flows and the main flow not reported before for these channels and just hinted by previous flow visualization studies.
机译:增强在低RE制度的热交换器中的混合是至关重要的。通过使用波纹板可以实现更好的混合。在这项工作中,研究了具有新型蛋壳几何形状的波纹板之间的流动模式。为具有180°或0°角的两个波纹板之间的稳定层流开发了三维(3D)数值模型。雷诺数(RE <= 600)定义为波纹板之间的平均距离。数值模型被严格开发和证实,以实现全球融合,局部收敛和网格大小独立性。对于两个相角,确定“紧密再循环”尺寸下游减小,最终由于流动发展特征而最终消失为“开放再循环”;发现二次流动区域在下游生长;有趣的是,雷诺数的增量有利于再循环生长和早期流量脱离;再循环的行为和几何形状符合先前的流动可视化结果。确定再循环对于仅针对180℃模型相对于通道中心是Z-对称的。 0°模型中的再循环较小,并且比在180℃模型中更早地变为“开放式再循环”。发现横向方向上的凸几何图是有利于脱离,而凹形几何形状抑制它。在任何方向上跟踪流动路径的数值方法的能力显示了次要流量之间的三维相互作用,并且在这些通道之前未报告的主流,并且仅通过先前的流动可视化研究暗示。

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