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Modeling of heat transfer and pyrolysis reactions in ethylene cracking furnace based on 3-D combustion monitoring

机译:基于3-D燃烧监测的乙烯裂解炉传热和热解反应建模

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In this paper, a distributed parameter model for tubular reactor in the ethylene cracking furnace based on 3-D temperature reconstruction is developed. The mathematical model was formulated to predict the distributions of the heat flux and the tube temperature while considering a non-uniform distribution of the surface heat transfer and the ethylene pyrolysis process. The results show that the heat flux distribution on the tubular reactor has four high heat flux zones, and the tube temperature reaches a maximum of 1088 degrees C. The value of the maximum tube temperature decreases compared with the value of the maximum heat flux due to the heat exchange coefficient of pyrolysis gas increasing slowly in the bend region. The tube temperature distribution was validated by using a spectrometer system and the errors between three major product yields at the tube outlet obtained by the proposed model and in-situ measured values were within 5%. This distributed parameter model can be used as a guide for ethylene cracking furnace operators and as a tool for design. (C) 2015 Elsevier Masson SAS. All rights reserved.
机译:本文建立了基于3-D温度重构的乙烯裂解炉管式反应器分布参数模型。建立了数学模型以预测热通量和管温度的分布,同时考虑了表面传热和乙烯热解过程的不均匀分布。结果表明,管式反应器上的热通量分布具有四个高热通量区域,管温最高达到1088摄氏度。最大管温的值与最大热通量的值相比有所降低,原因是热解气体的热交换系数在弯曲区域缓慢增加。通过使用光谱仪系统验证了管的温度分布,并且通过提出的模型获得的管出口处的三个主要产品产量与现场测量值之间的误差在5%之内。该分布参数模型可以用作乙烯裂化炉操作员的指南和设计工具。 (C)2015 Elsevier Masson SAS。版权所有。

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