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Numerical and Experimental Quantification of the Performance of Microreactors for Scaling-up Fast Chemical Reactions

机译:微量反应器性能的数值和实验量化,用于缩放快速化学反应

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Microreactors have been utilized for controlling fast chemical reactions. However, the scale-up strategy for fast reactions is not established enough due to the difficulty in quantifying the effect of the reactor size on the mixing performance, heat removal, and observable reaction rate. We present a chart for analyzing the effect of the mixing rate on the observable kinetic constant and a chart for estimating the temperature increase in the reactor. By using these charts, the validity of the rate analysis and the maximum reactor diameter, which control the reaction temperature, were determined. Commercial computational fluid dynamics (CFD) software was employed to solve the partial differential equations and to build the charts, and experiments were conducted to validate the results. We demonstrated the concept by using the ultrafast organolithium reaction in milliseconds. The product throughput was increased eight times with a reactor diameter that was twice as wide as the original reactor.
机译:已经用于控制快速化学反应的微反应器。然而,由于难以量化反应器大小对混合性能,除热和可观察反应速率的困难,因此不足以建立足够的快速反应的扩大策略。我们提出了一种图表,用于分析混合速率对可观察动力学常数的影响和用于估计反应器温度升高的图表。通过使用这些图表,测定速率分析的有效性和控制反应温度的最大反应器直径。采用商业计算流体动力学(CFD)软件来解决部分微分方程并构建图表,并进行实验以验证结果。我们通过使用毫秒的超氧化纤维锂反应证明了该概念。产品产量增加八次,反应器直径是原始反应器的两倍。

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