High-Fidelity Simulation and Parametric Analysis of Static Indirect Freeze Desalination Process

K. Kadi, I. Janajreh
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引用次数: 7

Abstract

Attaining water sustainability is crucial, while the failure to address challenges of the current desalination processes, i.e. high energy demand and cost negatively affects the global development goals. Freeze desalination (FD) technology has a great potential to overcome such challenges as it needs only 20% of energy required by the conventional thermal processes. FD is a crystallization-based technology where freshwater is separated from the saline water mixture in forms of ice crystals by cooling. In this work, high-fidelity numerical simulation of indirect FD process in a rectangular crystallizer is done using computational fluid dynamics (CFD) modeling of incompressible multispecies flow with solidification/melting. The model was used to perform parametric studies considering the effect of (i) initial brine salinity, (ii) freezing temperature, and (iii) initial brine temperature. Results showed that brines with lower salinities tends to provide better process performance. Lower freezing temperature will obviously provide larger ice block; however, it is associated with lower removal efficiency of salt. Similarly, decreasing the initial temperature seems to be highly affecting the growth rates and ice purity. Nevertheless, static layer indirect FD seems to be less productive when compared to other dynamic indirect freezing methods as progressive and falling film. Overall, more insight was given into the FD process using the CFD modeling in which it can be used as a prefect supporting tool for further experimental design and development.
静态间接冷冻脱盐过程的高保真仿真与参数分析
实现水的可持续性至关重要,而未能解决当前海水淡化过程的挑战,即能源需求高和成本高,对全球发展目标产生负面影响。冷冻脱盐(FD)技术具有克服这些挑战的巨大潜力,因为它只需要传统热过程所需能量的20%。FD是一种基于结晶的技术,通过冷却将淡水以冰晶的形式从盐水混合物中分离出来。本文采用计算流体动力学(CFD)模型对矩形结晶器内的凝固/熔化不可压缩多组分流动进行了高保真数值模拟。该模型用于考虑(i)初始盐水盐度、(ii)冻结温度和(iii)初始盐水温度的影响进行参数化研究。结果表明,盐度越低,工艺性能越好。较低的冻结温度显然会提供更大的冰块;但其对盐的去除率较低。同样,降低初始温度似乎对生长速率和冰纯度有很大影响。然而,与其他动态间接冷冻方法相比,静态层间接冷冻的效率似乎较低。总的来说,使用CFD建模可以更深入地了解FD过程,并将其作为进一步实验设计和开发的完美支持工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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