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Hydrogen production for fuel cells by autothermal reforming of methane over sulfide nickel catalyst on a gamma alumina support

机译:通过在γ-氧化铝载体上的硫化镍催化剂上甲烷自动热重整甲烷来生产燃料电池氢

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Experimental and modelling studies have been conducted on catalytic autothermal reforming (ATR) of methane for hydrogen production over a sulfide nickel catalyst on a gamma alumina support. The experiments are performed with different feedstock under thermally neutral conditions. The results show that the performance of the reformer is dependent on the molar air-to-fuel ratio (A/F), the molar water-to-fuel ratio (W/F) and the flowrate of the feedstock mixture. The optimum conditions for high methane conversion and high hydrogen yield are A/F = 3-3.5, W/F = 2-2.5 and a fuel flowrate below 120-2501h~(-1). Under these conditions, a methane conversion of 95-99 percent and a hydrogen yield of 39-41 percent on a dry basis can be achieved and 1 mole of methane can produce 1.8 moles of hydrogen at an equilibrium reactor temperature of not exceeding 850 deg C. A two-dimensional reactor model is developed to simulate the conversion behaviour of the reactor for further study of the reforming process. The model includes ail aspects of the major chemical kinetics and the heat and mass transfer phenomena in the reactor. The predicted results are successfully validated with experimental data.
机译:已经进行了实验和模型研究,研究了甲烷的催化自热重整(ATR),以在γ-氧化铝载体上的硫化镍催化剂上生产氢气。实验是在热中性条件下用不同的原料进行的。结果表明,重整器的性能取决于空气-燃料摩尔比(A / F),水-燃料摩尔比(W / F)和原料混合物的流量。高甲烷转化率和高氢气产率的最佳条件是A / F = 3-3.5,W / F = 2-2.5和燃料流量低于120-2501h〜(-1)。在这些条件下,以干基计,甲烷转化率为95-99%,氢气产率为39-41%,在平衡反应器温度不超过850℃的条件下,1摩尔甲烷可产生1.8摩尔氢气。建立了二维反应器模型以模拟反应器的转化行为,以进一步研究重整过程。该模型包括主要化学动力学以及反应器中传热和传质现象的所有方面。预测结果已通过实验数据成功验证。

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