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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Analytical models for heat transfer in the tube bundle of convection section in a steam cracking furnace
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Analytical models for heat transfer in the tube bundle of convection section in a steam cracking furnace

机译:蒸汽裂解炉管束中传热的分析模型

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In steam cracking furnaces, about 45% of the heat released from fuel combustion is recovered by preheating cracking feedstock and high pressure steam. This is achieved mainly by indirect convective heat transfer from flue gas to feedstock and steam in a series of tube bundles located in the so-called convection section. Radiation also plays in an important role in lower bundles where flue gas temperature is high. Thus, accurate heat transfer simulation of the convection section is crucial for operation optimization and control of steam cracking furnace. This paper aims to develop a heat transfer analysis (HTA) model for combined convective and radiative heat transfer calculation in tube bundles with both inline and staggered layouts. Computational fluid dynamics (CFD) was employed to validate the HTA model in the first stage. Based on the HTA model, coupled steady-state simulations of the convection section were performed for an industrial steam cracking furnace with naphtha feed capacity of 30 t/h. The predictions of the HTA model are in good agreement with the design data. The study shows that convective heat transfer is significantly enhance by fins in the tube bundles where the flue gas temperatures are too low to effectively heat up the feedstock. Radiative heat transfer at the bottom of the convection chamber is much larger than the convective heat transfer and thus cannot be ignored in heat transfer calculation.
机译:在蒸汽裂解炉中,通过预热裂解原料和高压蒸汽回收大约45%的热量释放的热量。这主要是通过在位于所谓的对流部分的一系列管束中从烟道气到原料和蒸汽的间接对流热传递来实现。辐射也在烟气温度高的较低束中发挥着重要作用。因此,对流部分的精确传热模拟对于操作优化和控制蒸汽裂化炉的控制是至关重要的。本文旨在开发一种传热分析(HTA)模型,用于在管束中组合的对流和辐射传热计算,其中包括内联和交错布局。使用计算流体动力学(CFD)来验证第一阶段的HTA模型。基于HTA模型,对对流部分的耦合稳态模拟,用于工业蒸汽裂解炉,石脑油进料容量为30吨/小时。 HTA模型的预测与设计数据很好。该研究表明,通过管束中的翅片显着增强了对流热传递,其中烟道气温太低,无法有效地加热原料。对流室底部的辐射热传递远大于对流传热,因此在传热计算中不能忽略。

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