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Detailed kinetic modeling of methanol synthesis over a ternary copper catalyst

机译:三元铜催化剂上甲醇合成的详细动力学模型

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Three differently detailed kinetic models for methanol synthesis are derived for experimental data measured over a ternary copper catalyst. Two global reactor models for reaction design, including a power law and a Langmuir-Hinshelwood-Hougen-Watson approach, are presented. In addition a microkinetic model is adapted to describe the whole experimental data and is used to discuss dynamical changes occurring during methanol synthesis. The first global model based on power law kinetics is very precisely in predicting the integral rates of methanol production. The power law requires the inclusion of a water inhibition term to be applicable over the whole range of experiments. A semi-empirical Langmuir-Hin-shelwood-Hougen-Watson model, taken from the literature, gives essentially the same results, even upon extrapolation. The third model, a microkinetic model, was successfully fitted with only two variables and is in reasonable agreement with the experimental data. For all models a sensitivity analysis shows the influencing parameters on the methanol production rate. The valid microkinetic model, however, can give qualitative estimations of the structure sensitivity and dynamic behavior of methanol synthesis. The dynamic change of active sites and of site distribution of different copper low-index planes along the reactor length is given and the inhibiting role of water, indicated by the power law and microkinetic model, is analyzed.
机译:对于在三元铜催化剂上测得的实验数据,得出了三种不同的甲醇合成动力学模型。介绍了两种用于反应设计的全局反应堆模型,包括幂律和Langmuir-Hinshelwood-Hougen-Watson方法。此外,微动力学模型适用于描述整个实验数据,并用于讨论甲醇合成过程中发生的动力学变化。基于幂律动力学的第一个全局模型非常精确地用于预测甲醇生产的整体速率。幂律要求包括水抑制项,以适用于整个实验范围。从文献中得出的半经验Langmuir-Hin-shelwood-Hougen-Watson模型甚至在外推时也得出基本相同的结果。第三个模型是微动力学模型,仅成功地使用了两个变量,并且与实验数据合理地吻合。对于所有模型,灵敏度分析均显示出影响甲醇产率的参数。有效的微动力学模型,但是,可以给出结构灵敏度和甲醇合成动力学行为的定性估计。给出了沿反应堆长度方向不同铜低折射率平面的活性位点和位点分布的动态变化,并分析了幂律和微动力学模型对水的抑制作用。

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