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Simulation of autothermal reforming in a staged-separation membrane reactor for pure hydrogen production

机译:分段分离膜反应器中自热重整生产纯氢的模拟

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Steam methane reforming with oxygen input is simulated in staged-separation membrane reactors. The configuration retains the advantage of regular membrane reactors for achieving super-equilibrium conversion, but reaction and membrane separation are carried out in two separate units. Equilibrium is assumed in the models given the excess of catalyst. The optimal pure hydrogen yield is obtained with 55% of the total membrane area allocated to the first of two modules. The performance of the process with pure oxygen input is only marginally better than with air. Oxygen must be added in split mode to reach autothermal operation for both reformer modules, and the oxygen input to each module depends on the process conditions. The effects of temperature, steam-to-carbon ratio and pressure of the reformer and the area of the membrane modules are investigated for various conditions. Compared with a traditional reformer with an ex situ membrane purifier downstream, the staged reactor is capable of much better pure hydrogen yield for the same autothermal reforming operating conditions.
机译:在分段分离膜反应器中模拟了用氧气输入的蒸汽甲烷重整。该构造保留了常规膜反应器用于实现超平衡转化的优势,但是反应和膜分离是在两个单独的单元中进行的。考虑到催化剂的过量,在模型中假设平衡。通过将总膜面积的55%分配给两个模块中的第一个模块,可以获得最佳的纯氢气产率。使用纯氧气输入的过程的性能仅比使用空气稍微好一些。必须以分流方式添加氧气,以使两个重整器模块都达到自热运行状态,并且输入每个模块的氧气取决于工艺条件。在各种条件下,研究了温度,蒸汽碳比和重整器压力以及膜组件面积的影响。与下游带有异位膜纯化器的传统重整器相比,分段反应器在相同的自热重整操作条件下能够获得更高的纯氢收率。

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