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Modeling and optimizing of steam pyrolysis of dimethyl formamide by using response surface methodology coupled with Box-Behnken design

机译:响应面法结合Box-Behnken设计对二甲基甲酰胺的蒸汽热解进行建模和优化

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摘要

A non-catalytic steam pyrolysis of N,N-dimethyl formamide (DMF) was studied in a SS 316 plug flow reactor at atmospheric pressure as a waste solvent minimization method. The reaction products were analyzed by using gas chromatography-thermal conductivity detector and high performance liquid chromatography-refractive index detector. The optimization of process variables namely, temperature, flow rate and water to DMF ratio (v/v) for the maximum conversion of DMF have been studied by response surface methodology (RSM) coupled with a Box-Behnken design. The analysis of variance (ANOVA) data shows the conversion of DMF significantly enhances with temperature. Higher flow rate has adverse effect on DMF conversion, whereas water to DMF ratio (v/v) shows negligible effect on conversion of DMF. With the help of a developed RSM model, the highest conversion of DMF (89.82 wt%) was predicted at 1100 ℃, 0.48 ml/min and watenDMF ratio of 1.35 (v/v). Based on the experimental design, eight empirical models were developed those depict the interacting effect of different sets of operating variables on conversion of DMF and yield of seven products. Effect of process variables on yield of CO_2 and N_2 were studied, individually. Oxidative pyrolysis of DMF was also investigated, which shows significant reduction in the coke formation with increasing H_2O_2 to DMF mol ratio.
机译:N,N-二甲基甲酰胺(DMF)的非催化蒸汽热解反应是在SS 316活塞流反应器中于大气压下进行的,作为减少废溶剂的方法。使用气相色谱-热导检测器和高效液相色谱-折射率检测器分析反应产物。已通过响应表面方法(RSM)结合Box-Behnken设计研究了工艺变量的优化,即温度,流量和水与DMF的比率(v / v)以实现DMF的最大转化。方差分析(ANOVA)数据显示DMF的转化率随温度显着提高。较高的流速对DMF的转化有不利影响,而水与DMF的比例(v / v)对DMF的转化影响可忽略不计。借助改进的RSM模型,预计在1100℃,0.48 ml / min和watenDMF比为1.35(v / v)时,DMF的最高转化率(89.82 wt%)。在实验设计的基础上,开发了八个经验模型,这些模型描述了不同操作变量集对DMF转化率和七个产品收率的相互作用。分别研究了工艺变量对CO_2和N_2产量的影响。还研究了DMF的氧化热解,结果表明,随着H_2O_2与DMF摩尔比的增加,焦炭的形成显着减少。

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