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Mathematical Modeling and Optimization of Syngas Production Process: A Novel Axial Flow Spherical Packed Bed Tri-Reformer

机译:合成气生产过程的数学建模与优化:一种新型轴流球形堆积床三重整器

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摘要

A recently proposed approach for the production of syngas is Tri-reforming process. Significant preferences of tri-reforming over conventional reformers are high methane conversion in a single unit, in situ heat generation, carbon dioxide consumption and adjustable outlet H2/CO ratio. In this work, a one dimensional mathematical model was developed for a novel axial-flow spherical packed bed tri-reformer. The results of reforming model were compared with the process data obtained from conventional Lurgi-steam reformer (CSR). Effects of feed flow rate, inlet temperature and length per radius (L/R) of the reactor on outlet hydrogen yield, methane conversion and H2/CO ratio were also studied. To maximize the outlet hydrogen yield, operation conditions and L/R ratio of the reactor were optimized applying differential evolution (DE) method. Obtained results were then compared with non-optimized condition. High methane conversion (99.68 %), high hydrogen yield (1.896) and much lower pressure drop were the superiorities of the presented reactor to the previous configurations.
机译:最近提出的合成气的方法是三重整过程。在传统重整器上的三重整的显着偏好是单个单元中的高甲烷转化,原位发热,二氧化碳消耗和调节出口H2 / CO比。在这项工作中,开发了一种用于新型轴流球形堆积床三重整器的一维数学模型。将重整模型的结果与从常规的LuRgi-蒸汽重整器(CSR)获得的过程数据进行了比较。还研究了对反应器的进料流速,入口温度和长度(L / R)对出口氢屈服,甲烷转化和H2 / Co比的影响。为了最大化出口氢屈服,对反应器的操作条件和L / R比施加差分演进(DE)方法。然后将得到的结果与非优化条件进行比较。高甲烷转化率(99.68%),高氢屈服(1.896),低得多的压降是所呈现的反应器对先前配置的优势。

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