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Analysis of heat and mass transfer by CFD for performance enhancement in direct contact membrane distillation

机译:CFD传热传质分析对直接接触式膜蒸馏性能的影响

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摘要

A comprehensive analysis on the dominant effects for heat and mass transfer in the direct contact membrane distillation (DCMD) process has been performed with the aid of computational fluid dynamics (CFD) simulations for hollow fiber modules without and with annular baffles attached to the shell wall. Potential enhancement strategies under different circumstances have been investigated.\ud\udNumerical simulations were carried out to investigate the effect of the MD intrinsic mass-transfer coefficient of the membrane (C) on the performance enhancement for both non-baffled and baffled modules. It was found that the temperature polarization coefficient (TPC) decreases significantly with increasing C value regardless of the existence of baffles, signifying a loss of overall driving force. However, the higher C compensated for this and the mass flux showed an increasing trend. A membrane with a lower C value was found to be less vulnerable to the TP effect. In this case, the introduction of turbulence aids such as baffles did not show substantial effect to improve system performance. In contrast, introducing baffles into the module can greatly enhance the mass flux and the TPC for a membrane with a high C value, where the main heat-transfer resistance is determined by the fluid side boundary layers.\ud\udThe effect of operating temperature on heat and mass transfer in the MD process was also studied with a membrane of a lower C value (2.0 × 10−7 kg m−2 s−1 Pa−1). Although the TPC generally decreased with increasing operating temperatures, the mass flux Nm increased significantly when operating temperature increased. A baffled module showed a more significant improvement than a non-baffle module at a higher temperature. Moreover, it was confirmed that higher operating temperatures are preferable for a substantial improvement in the heat/mass transfer as well as MD thermal efficiency, even with a relatively small transmembrane temperature difference of 10 K.
机译:借助计算流体动力学(CFD)模拟,对不带或带有环形挡板的中空纤维组件进行了直接接触膜蒸馏(DCMD)过程中传热和传质的主要影响的综合分析。 。研究了在不同情况下的潜在增强策略。\ ud \ ud进行了数值模拟,以研究膜(C)的MD固有传质系数对非折流板和折流板模块性能提升的影响。结果发现,无论是否存在挡板,温度极化系数(TPC)随C值的增加而显着降低,这意味着整体驱动力的损失。但是,较高的C对此进行了补偿,并且质量通量显示出增加的趋势。发现具有较低C值的膜较不易受TP效应的影响。在这种情况下,湍流助剂(例如挡板)的引入并未显示出对改善系统性能的实质作用。相比之下,将折流板引入模块可以大大提高C值较高的膜的质量通量和TPC,其中主要的传热阻力由流体侧边界层决定。\ ud \ ud工作温度的影响还研究了使用较低C值(2.0×10-7 kg m-2 s-1 Pa-1)的膜对MD过程中传热和传质的影响。尽管TPC通常随着工作温度的升高而降低,但当工作温度升高时,质量通量Nm会显着增加。在较高温度下,带挡板的模块显示出比无挡板模块更大的改进。此外,已经证实,即使具有相对较小的跨膜温差为10 K,较高的工作温度对于充分改善传热/传质以及MD热效率也是优选的。

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