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Numerical simulation of exhaust reforming characteristics in catalytic fixed-bed reactors for a natural gas engine

机译:天然气发动机催化固定床反应器排气重整特性的数值模拟

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Coupled with detailed catalytic reaction mechanism, the exhaust reforming process in a fixed bed reactor was simulated using a porous media model to investigate the reforming characteristics under different initial conditions. The effects of gas hourly space velocity (GHSV), feed component, steam addition and wall temperature on the methane conversion rate, hydrogen yield and other characteristic parameters were analyzed. The simulation results show that the oxygen is consumed rapidly when the reforming gas enters the reaction zone and the steam reforming plays a dominant role in the latter part. The exhaust reforming process mainly involves oxidation reaction, steam reforming reaction and water gas shift reaction. The methane conversion and hydrogen production decrease with the rise of GHSV, while the molar ratio of H2to CO first increases and then decreases and reaches its peak value when GHSV ranges from 30,000?h?1to 35,000?h?1. As the ratio of methane to exhaust increases, a higher molar fraction of hydrogen at the outlet can be achieved owing to a bigger proportion of partial reforming reaction of methane, and methane conversion rate decreases. It also suggests that a modest steam addition is preferable for both the reforming performance and the life span of the fixed bed.
机译:通过详细的催化反应机理偶联,使用多孔介质模型模拟固定床反应器中的排气重整方法,以研究不同初始条件下的重整特性。分析了气体小时空速(GHSV),进料组分,蒸汽加成和壁温对甲烷转化率,氢产率和其他特征参数的影响。仿真结果表明,当重整气体进入反应区时,氧气被消耗迅速,蒸汽重整在后一部分中起着显着作用。排气重整过程主要涉及氧化反应,蒸汽重整反应和水煤气变换反应。随着GHSV的升高,甲烷转化和氢气产量降低,而H2To Co的摩尔比第一次增加,然后在GHSV范围为30,000?H?1至35,000?H?1时降低并达到其峰值。随着甲烷与排气的比例增加,由于甲烷的部分重整反应比例较大,可以实现在出口处的较高摩尔级分,并且甲烷转化率降低。它还表明,对于重整性能和固定床的寿命,优选适度的蒸汽添加。

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