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Multifield computational fluid dynamics model of particulate flow in curved circular tubes

机译:弯曲圆管中颗粒流的多场计算流体动力学模型

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摘要

Limitations of mass transfer resulting from non-optimized fluid mechanics can severely affect the performance of synthetic membrane filtration systems. To improve membrane efficiency, modern applications of this technology have extensively used curved membrane ducts that take advantage of Dean vortices (i.e., curvature-induced secondary flows) to minimize membrane fouling. This paper is concerned with a complete three-dimensional analysis of single-phase and two-phase particle/liquid flows around a curved membrane tube. The proposed multidimensional model was implemented in an advanced (next-generation) multiphase computational fluid dynamics (CFD) solver, NPHASE. The results of simulations have been validated against experimental data and compared against other findings available in the literature. The consistency and accuracy of the present approach have been demonstrated. The novel aspects of this work include: the demonstration that azimuthal vortices may bifurcate at Dean numbers lower than previously anticipated, the use of vorticity magnitude as a measure of vortex strength, and the explanation of the role that Dean vortices play to mitigate the effect of gravity on particle settling. The overall results have direct relevance to synthetic membrane fouling during filtration of particle suspensions.
机译:非最佳流体力学导致的传质限制会严重影响合成膜过滤系统的性能。为了提高膜效率,该技术的现代应用已广泛使用弯曲的膜导管,该导管利用迪安涡旋(即,曲率引起的二次流)来最大程度地减少膜污染。本文涉及围绕弯曲膜管的单相和两相颗粒/液体流的完整三维分析。所提出的多维模型是在高级(下一代)多相计算流体动力学(CFD)求解器NPHASE中实现的。模拟结果已根据实验数据进行了验证,并与文献中的其他发现进行了比较。已经证明了本方法的一致性和准确性。这项工作的新颖之处包括:证明方位涡旋可能会以比以前预计的更低的Dean数分叉;使用涡度大小作为涡旋强度的度量;以及解释Dean涡旋在减轻涡流强度方面的作用。重力沉降。总体结果与颗粒悬浮液过滤过程中的合成膜结垢直接相关。

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