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Energy efficiency of permeate gap and novel conductive gap membrane distillation

机译:渗透间隙的能量效率和新型导电间隙膜蒸馏

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摘要

This work presents numerical modeling results and flux experiments for a novel membrane distillation configuration called conductive gap membrane distillation (CGMD), as well as permeate gap membrane distillation (PGMD). CGMD has a conductive spacer in the gap between the membrane and condensing surface rather than more commonly used insulating materials. Flux measurements with two experimental systems are used to validate the numerical models for PGMD and CGMD. PGMD has 20% higher GOR (energy efficiency) than an air gap membrane distillation (AGMD) system of the same size, whereas CGMD can have two times higher GOR than even PGMD. Increasing gap effective thermal conductivity in CGMD has negligible benefits beyond View the MathML source under the conditions of this study. The direction of pure water flow in the gap has a significant influence on overall system energy efficiency, especially in the case of CGMD. Using a countercurrent configuration for the pure water flow in the gap relative to the cold stream leads to 40% higher GOR than flow cocurrent with the cold water stream.
机译:这项工作提供了一种新型的膜蒸馏配置(称为导电间隙膜蒸馏(CGMD)和渗透间隙膜蒸馏(PGMD))的数值模拟结果和通量实验。 CGMD在膜和冷凝表面之间的间隙中具有导电垫片,而不是更常用的绝缘材料。使用两个实验系统进行的通量测量可验证PGMD和CGMD的数值模型。 PGMD的GOR(能量效率)比相同尺寸的气膜蒸馏(AGMD)系统高20%,而CGMD的GOR甚至是PGMD的两倍。在此研究条件下,增加CGMD中的间隙有效导热系数所带来的好处可忽略不计。间隙中纯水的流动方向对整个系统的能效有重要影响,尤其是在CGMD的情况下。对纯水在逆流中相对于冷流使用逆流配置会导致GOR比与冷水流并流的GOR高40%。

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