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Coke formation possibility during production of reducing gas in large scale direct reduction plant

机译:大型直接还原厂生产还原气过程中结焦的可能性

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For the production of synthesis gas utilised in Midrex direct reduction plants, catalytic steam/CO2 hydrocarbon reforming in tubular reformer is the major process. Owing to the high heat input through the Midrex reformer tube wall, the endothermic nature of reforming reactions, low mass velocity of feed gas and large tube diameter, the catalyst bed is exposed to considerable axial and radial temperature gradients. These radial concentration and temperature gradients may create local areas with potential for carbon formation. To investigate this phenomenon, a rigorous two-dimensional model is developed for simulating the operation of a Midrex reformer which applies a dual catalyst loading profile. Both process side and furnace side have been included in this integrated model. Simulation results are in good agreement with available data from an actual plant. Using this model, a thermodynamic approach is applied to recognise zones in which the risk of carbon formation is high inside the reformer tubes. The results show that the first half of tubes, both in centre and near the wall, is critical from carbon forming point of view. Furthermore, the model shows that how a certain catalyst loading profile will affect the operation of the reformer.
机译:对于生产用于Midrex直接还原厂的合成气,管式重整器的催化蒸汽/ CO 2 烃重整是主要过程。由于通过Midrex重整器管壁输入的高热量,重整反应的吸热特性,进料气的质量速度低和管径大,催化剂床暴露在相当大的轴向和径向温度梯度下。这些径向浓度和温度梯度可能会形成具有碳形成潜力的局部区域。为了研究这种现象,开发了严格的二维模型来模拟采用双重催化剂负载曲线的Midrex重整器的操作。该集成模型中同时包含了过程侧和熔炉侧。仿真结果与实际工厂的可用数据非常吻合。使用该模型,热力学方法被应用于识别重整管内部碳形成风险高的区域。结果表明,从碳形成的角度来看,管的前半部分,无论是在中心还是在壁附近,都是至关重要的。此外,该模型表明一定的催化剂负载曲线将如何影响重整器的操作。

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