冷冻结晶脱盐:综述

K. Kadi, I. Janajreh
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引用次数: 37

摘要

冷冻结晶脱盐是一种将水结晶成冰并从盐溶液中分离出来的冻融过程。该地区正在复兴,以减轻对环境产生负面影响的惊人和海洋排斥盐水。NaCl-H2O相图是设计冷冻脱盐系统的关键。所有的冷冻结晶方法都遵循相同的过程,从成核,晶体生长,分离,最后融化。直接接触、间接接触、真空和共晶点是结晶的基本方法。此外,悬浮液冷冻和与制冷剂间接接触的冷板冷冻是最适合的脱盐方法。初始浓度、制冷剂温度、生长速率和流量是决定最终产品性能和脱盐效率的主要操作参数。在这项工作中,随着该领域的复兴,对该主题进行了快速回顾,随后使用计算流体动力学(CFD)建模模拟了矩形外壳中的间接冷冻结晶过程。这些模型是范式转换,以获得更多的了解复杂的结晶过程是基于多种非等温流在两相流代表液体和冰的形成。结果表明,结合CFD多组分模拟可以揭示、优化和重新设计冻结结晶过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Desalination by Freeze Crystallization: An Overview
Desalination by freeze crystallization is a freezing-melting process in which water is crystallized to ice and separated from saline solution. This area is observing a renascence to mitigate the staggering and sea rejected brine that has a negative environmental impact. Phase diagram of NaCl-H2O is the key point of designing freeze desalination systems. All freeze crystallization methods follow the same process, starting from nucleation, crystal growth, separation, and finally melting. Direct contact, indirect contact, vacuum, and eutectic point are the basic methods of crystallization. Furthermore, suspension freezing and freezing on a cold plate by indirect contact with refrigerant are the found to be the most suitable methods for desalination. Initial concentration, refrigerant temperature, growth rate, and flow rate are the main operating parameters that determine the final product properties and desalination efficiency. In this work, a quick review on the subject is brought up as the area is regaining renascence this followed with simulation of an indirect freeze crystallization process in a rectangular enclosure using computational fluid dynamics (CFD) modelling. These modeling are paradigm shift to gain more insight to the complex crystallization process being based on multiple species non-isothermal flow in a two phase flow representing the liquid and the ice formation. Results show that by combined CFD in multiple species modelling much insight into freeze crystallization can be revealed, optimized and re-designed.
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