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Mathematical modeling of the propane dehydrogenation process in the catalytic membrane reactor

机译:催化膜反应器中丙烷脱氢过程的数学模型

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The two-dimensional non-isothermal stationary mathematical model of the catalytic membrane reactor for the process of propane dehydrogenation has been developed. The made calculations have shown the higher efficiency of the membrane reactor in comparison with the tubular one which is achieved due to removal of hydrogen from reactionary zone through the membrane to shift the reaction equilibrium towards formation of products. The use of membrane was found to cause the propane conversion increase from 41% to 67%. The highest value of propane conversion (X=96%) was reached in case of additional oxidation of the removed hydrogen (conjugated dehydrogenation). The maximum value of propylene selectivity S = 98% can be as well reached in case of conjugated dehydrogenation in the membrane reactor at the reaction temperature of 500 °C. The oxidation of hydrogen in conjugated dehydrogenation process gives the increase of propylene yield from 65% (the tubular reactor) to 95%. The maximum propylene yield corresponds to T=525°C. It was also established that the gas space velocity in both internal and external parts of the membrane reactor is to be the one of the most important factors defining efficiency of the conjugated dehydrogenation process.
机译:建立了丙烷脱氢催化膜反应器的二维非等温平稳数学模型。所进行的计算表明,与管式反应器相比,膜式反应器具有更高的效率,这是由于通过膜从反应区除去氢,从而使反应平衡朝着形成产物的方向移动而实现的。发现使用膜导致丙烷转化率从41%增加到67%。在除去的氢进一步氧化(共轭脱氢)的情况下,丙烷转化率达到最高值(X = 96%)。在膜反应器中在500°C的反应温度下进行共轭脱氢的情况下,丙烯选择性的最大值S = 98%也可以达到。共轭脱氢过程中氢的氧化使丙烯产率从65%(管式反应器)提高到95%。丙烯的最大产率对应于T = 525℃。还已经确定,膜反应器内部和外部的气体空间速度将是限定共轭脱氢过程效率的最重要因素之一。

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