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Engineering Water and Solute Dynamics and Maximal Use of CNT Surface Area for Efficient Water Desalination

机译:工程水和溶质动力学和最大利用CNT表面积,以高效水脱盐

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While polymer-based membranes and the consistent plants and elements have long been considered and optimized, there are only few studies on optimization of the new generation of carbon-based porous membranes for water desalination. By modeling the elements and their corresponding parameters in a vertical configuration via COMSOL Multiphysics software, an experimental setup was modified that contained various bare and carbon nanotube (CNT)-covered microprocessed porous membranes in parallel and in series. Several design parameters such as inlet pressure, length of outlet, vertical distance of the parallel membranes, and horizontal distances of the series membranes were optimized. Taking advantage of the uttermost surface area of CNTs and the engineered particle trajectory, almost 90% NaCl rejection and 97% Allura red rejection were obtained with very high permeation values. Considering microsized outlets, the results of particle rejections are outstanding owing to the smart design of the setup. The results of this work can be extended to larger and smaller scales up to the point where the governing equations still hold.
机译:虽然基于聚合物的膜和一致的植物和元素长期被考虑和优化,但只有很少有关于优化新一代碳基多孔膜进行水脱盐的研究。通过COMSOL多体主义软件在垂直配置中建模元件及其相应的参数,修改了一种实验装置,其含有各种裸露和碳纳米管(CNT) - 综合的微处理多孔膜,并串联。优化了几种设计参数,例如入口压力,出口长度,平行膜的垂直距离,以及系列膜的水平距离被优化。利用CNT的最大表面区域和工程化粒子轨迹,几乎90%NaCl排斥和97%的血浆红色排斥以非常高的渗透值获得。考虑到微态出口,由于设置的智能设计,粒子抑制的结果突出。这项工作的结果可以扩展到更大,较小的缩放,直至控制方程仍然存在。

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