工业固定床模拟马来酸酐合成的改进动力学参数的确定及应用

Ervin Karić, I. Petric, V. Mićić
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摘要

本研究的目的是确定在工业固定床反应器中正丁烷氧化成马来酸酐的五种动力学模型的改进动力学参数,并模拟反应器的性能。根据测量的工艺参数,计算了正丁烷的入口和出口浓度,并用于拟合动力学模型。用10个连续搅拌槽式反应器(CSTR)串联模拟工业固定床反应器。在计算工业反应器出口正丁烷浓度的基础上,计算了倒数第二反应器出口正丁烷浓度。然后计算正丁烷的浓度,直到得到第一反应器的正丁烷入口浓度。通过比较第一反应器的入口丁烷浓度与工业固定床反应器中测量的工艺参数得到的入口丁烷浓度,确定了动力学参数。采用改进的动力学参数的动力学模型比采用现有动力学参数的动力学模型具有更好的仿真效果。应用动力学模型2(式(2a-c)),仿真结果与实测值最吻合。应用动力学模型3时,数值模拟与反应混合物出口压力实测值的最小偏差分别为0.45、0.75和0.75%(式(3a-c))。改进动力学参数的数值模拟结果与反应器内温度实测值的偏差在0.90 ~ 5.36%之间,与已有动力学参数的数值模拟结果的偏差在4.17 ~ 9.78%之间(动力学模型2,方程(2a-c))。
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Determination and Application of Improved Kinetic Parameters for Simulation of Maleic Anhydride Synthesis in Industrial Fixed- Bed Reactor
The aims of this study were to determine improved kineticparameters in five kinetic models for oxidation of n-butane intomaleic anhydride in an industrial fixed-bed reactor, and tosimulate the reactor performance. On the basis of the measuredprocess parameters, inlet and outlet concentrations of n-butanewere calculated and then used to fit the kinetic models. Theindustrial fixed-bed reactor was approximated by 10 continuousstirred tank reactors (CSTR) connected in series. Based on thecalculated outlet concentration of n-butane from the industrialreactor, the outlet concentration of n-butane from thepenultimate reactor was calculated. Then the concentrations ofn-butane were calculated until the inlet concentration of nbutanein the first reactor was obtained. Kinetic parameterswere determined by comparing the inlet concentrations of nbutanein the first reactor with the inlet concentration of nbutaneobtained on the basis of the measured processparameters in the industrial fixed-bed reactor. Kinetic modelswith improved kinetic parameters showed better simulationresults compared to kinetic models with the existing kineticparameters. The best agreement of simulation results andmeasured values was achieved with application of the kineticmodel 2 (Equations (2a-c)). The smallest deviations ofnumerical simulation in comparison with measured values of theoutlet pressure of reaction mixture were 0.45, 0.75 and 0.75%for application of the kinetic model 3 (Equations (3a-c)). Thepercentage deviations of numerical simulation with improvedkinetic parameters and the existing kinetic parameters incomparison with measured values of inside reactor temperaturewere in the range 0.90-5.36% and in the range 4.17-9.78%(kinetic model 2, Equations (2a-c)), respectively.
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