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Polypropylene Production Optimization in Fluidized Bed Catalytic Reactor (FBCR): Statistical Modeling and Pilot Scale Experimental Validation

机译:流化床催化反应器(FBCR)中聚丙烯生产的优化:统计模型和中规模实验验证

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摘要

Propylene is one type of plastic that is widely used in our everyday life. This study focuses on the identification and justification of the optimum process parameters for polypropylene production in a novel pilot plant based fluidized bed reactor. This first-of-its-kind statistical modeling with experimental validation for the process parameters of polypropylene production was conducted by applying ANNOVA (Analysis of variance) method to Response Surface Methodology (RSM). Three important process variables i.e., reaction temperature, system pressure and hydrogen percentage were considered as the important input factors for the polypropylene production in the analysis performed. In order to examine the effect of process parameters and their interactions, the ANOVA method was utilized among a range of other statistical diagnostic tools such as the correlation between actual and predicted values, the residuals and predicted response, outlier t plot, 3D response surface and contour analysis plots. The statistical analysis showed that the proposed quadratic model had a good fit with the experimental results. At optimum conditions with temperature of 75°C, system pressure of 25 bar and hydrogen percentage of 2%, the highest polypropylene production obtained is 5.82% per pass. Hence it is concluded that the developed experimental design and proposed model can be successfully employed with over a 95% confidence level for optimum polypropylene production in a fluidized bed catalytic reactor (FBCR).
机译:丙烯是在我们的日常生活中广泛使用的一种塑料。这项研究的重点是确定和验证基于新型中试工厂的流化床反应器中聚丙烯生产的最佳工艺参数。通过将ANNOVA(方差分析)方法应用于响应表面方法(RSM),进行了这种首次具有统计学验证的聚丙烯生产工艺参数的统计建模。在进行的分析中,三个重要的工艺变量,即反应温度,系统压力和氢百分比被认为是聚丙烯生产的重要输入因素。为了检查过程参数及其相互作用的影响,在许多其他统计诊断工具中使用了ANOVA方法,例如实际值和预测值之间的相关性,残差和预测响应,离群t图,3D响应面和轮廓分析图。统计分析表明,所提出的二次模型与实验结果吻合良好。在温度为75°C,系统压力为25 bar,氢气百分比为2%的最佳条件下,获得的最高聚丙烯产量为每通5.82%。因此,可以得出结论,所开发的实验设计和提出的模型可以成功地以超过95%的置信度成功用于流化床催化反应器(FBCR)中的最佳聚丙烯生产。

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