首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Spacer optimization strategy for direct contact membrane distillation: Shapes, configurations, diameters, and numbers of spacer filaments
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Spacer optimization strategy for direct contact membrane distillation: Shapes, configurations, diameters, and numbers of spacer filaments

机译:用于直接接触膜蒸馏的间隔优化策略:形状,配置,直径和间隔细丝的数量

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摘要

The decrease of vapor flux in a direct contact membrane distillation (DCMD) system is usually triggered by temperature polarization (TP) and concentration polarization (CP). Optimal spacer design is therefore essential to minimize vapor flux decrease. In this study, a numerical DCMD model was developed using computational fluid dynamics. Using a simultaneous evaluation of the effects of TP, CP, and spacer shape and configuration on vapor flux, shear stress and hydraulic pressure drop, the model seeks an optimal manufacturable spacer design. Fifty-one different spacer designs were comprehensively compared after model validation. Based on the simulation results, a symmetric circular-zigzag configuration of spacers gives the best performance for vapor flux, 26% higher than an empty channel. Spacer design optimization was conducted with reference to various sizes and number of spacer filaments. In conclusion, with relatively expensive heat sources, a symmetric circular zigzag spacer design with a larger diameter and more filaments can be theoretically recommended to maximize vapor flux; in contrast, with cost-free heat sources, a smaller diameter size and fewer filaments can be theoretically recommended to minimize hydraulic pressure drop. In addition, the model outlined in this study could be used to evaluate the performance of other membrane processes associated with spacers.
机译:直接接触膜蒸馏(DCMD)系统中的蒸汽通量的降低通常通过温度极化(TP)和浓度极化(CP)触发。因此,最佳间隔物设计对于最小化蒸汽通量减小是必不可少的。在该研究中,使用计算流体动力学开发了一种数值DCMD模型。使用同时评估TP,CP和间隔形状和配置对蒸汽通量,剪切应力和液压降的影响,该模型寻求最佳的可制造间隔设计。在模型验证后,将全面进行五十一种不同的间隔设计。基于仿真结果,垫片的对称圆形锯齿形配置为蒸汽通量提供了最佳性能,比空通道高出26%。参考各种尺寸和间隔丝数进行间隔物设计优化。总之,通过相对昂贵的热源,理论上可以理论上建议具有较大直径和更多长丝的对称圆形曲折间隔性设计,以最大化蒸汽通量;相反,通过无成本的热源,理论上可以推荐较小的直径尺寸和更少的长丝,以最小化液压降。此外,本研究中概述的模型可用于评估与间隔物相关的其他膜过程的性能。

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