Non-Isothermal Compressible Flow Model for Analyzing the Effect of High CO2 Inlet Flow Rate on Particle Size in a Supercritical Antisolvent Process

Q4 Energy
Regiani Aparecida de Almeida, Ricardo Vicente de Paula Rezende, Flávia Aparecida Reitz Cardoso, Lúcio Cardozo Filho
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Abstract

In this work with CFD simulations, the evaluation of the supercritical anti-solvent (SAS) process for producing nanoparticles from an expanded solution of ethanol/solute in carbon dioxide is reported. The influence of the solution and antisolvent flow rates on mean particle size, the flow dynamic, and the supercritical mixture's jet velocity must be well established in the literature and analyzed. The high flow rate of the anti-solvent resulted in increased mean particle sizes for all studied cases. At the lowest flow rate of CO2 examined, an increase in the solvent flow rate [0.3-1.0] ml/min initially led to a decrease of 11.2% in the mean particle diameter (MPD); however, further increasing the solvent flow rate [1.0-2.0]ml/min was an increase of 33% in this parameter. At the highest CO2 flow rate, the behavior of MPS was the opposite; it had a rise de 13.5% in MPD with an increase in solvent flow rate; further increasing the flow rate of the solvent, there was a drop of 8.6% in MPD. Significant variations in the temperature lead to large fluctuations in the particle diameters. At last, the contact zones between CO2 and ethanol were delimited, favoring the understanding of the influence of the flow patterns generated by the variation of the flow rates in the mean particle diameters.
超临界抗溶剂工艺中高CO2进口流量对粒径影响的非等温可压缩流动模型
通过CFD模拟,对超临界反溶剂(SAS)工艺在乙醇/溶质在二氧化碳中的膨胀溶液中产生纳米颗粒进行了评价。溶液和反溶剂流速对平均粒径、流动动力学和超临界混合物射流速度的影响必须在文献中得到很好的确立和分析。抗溶剂的高流速导致所有研究案例的平均粒径增加。在CO2最低流速下,溶剂流速[0.3-1.0]ml/min的增加最初会导致平均粒径(MPD)下降11.2%;然而,进一步增加溶剂流速[1.0-2.0]ml/min,该参数增加33%。在最高CO2流量下,MPS的行为与此相反;随着溶剂流速的增加,MPD提高了13.5%;进一步提高溶剂流速,MPD下降8.6%。温度的显著变化导致颗粒直径的大幅度波动。最后,对CO2与乙醇的接触区域进行了划分,有利于了解流速变化对平均粒径产生的流动模式的影响。
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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来源期刊
Journal of Nuclear Energy Science and Power Generation Technology
Journal of Nuclear Energy Science and Power Generation Technology Energy-Energy Engineering and Power Technology
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