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Methane steam reforming using a membrane reactor equipped with a Pd-based composite membrane for effective hydrogen production

机译:使用配备Pd基复合膜的膜反应器进行甲烷蒸汽重整以有效制氢

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Herein, a methane steam reforming (MSR) reaction was carried out using a Pd composite membrane reactor packed with a commercial Ru/Al2O3 catalyst under mild operating conditions, to produce hydrogen with CO2 capture. The Pd composite membrane was fabricated on a tubular stainless steel support by the electroless plating (ELP) method. The membrane exhibited a hydrogen permeance of 2.26 x 10(-3) mol m(2) s(-1) Pa (-0.5), H-2/N-2 selectivity of 145 at 773 K, and pressure difference of 20.3 kPa. The MSR reaction, which was carried out at steam to carbon ratio (S/C) = 3.0, gas hourly space velocity (GHSV) = 1700 h(-1), and 773 K, showed that methane conversion increased with the pressure difference and reached 79.5% at Delta P = 506 kPa. This value was similar to 1.9 time higher than the equilibrium value at 773 K and 101 kPa. Comparing with the previous studies which introduced sweeping gas for low hydrogen partial pressure in the permeate stream, very high pressure difference (2500-2900 kPa) for increase of hydrogen recovery and very low GHSV (150) for increase hydraulic retention time (HRT), our result was worthy of notice. The gas composition monitored during the long-term stability test showed that the permeate side was composed of 97.8 vol% H-2, and the retentate side contained 67.8 vol% CO2 with 22.2 vol% CH4. When energy was recovered by CH4 combustion in the retentate streams, pre-combustion carbon capture was accomplished using the Pd-based composite membrane reactor.
机译:本文中,使用装有商业化Ru / Al2O3催化剂的Pd复合膜反应器在温和的操作条件下进行甲烷蒸汽重整(MSR)反应,以产生具有CO2捕集的氢气。通过化学镀(ELP)方法将Pd复合膜制作在管状不锈钢支架上。该膜的氢气渗透率为2.26 x 10(-3)mol m(2)s(-1)Pa(-0.5),H-2 / N-2选择性在773 K下为145,压差为20.3 kPa 。 MSR反应在水蒸气与碳之比(S / C)= 3.0,气体时空速(GHSV)= 1700 h(-1)和773 K下进行,表明甲烷转化率随压力差和在Delta P = 506 kPa时达到79.5%。该值比在773 K和101 kPa时的平衡值高1.9倍。与以前的研究相比,引入渗透气体可降低渗透物流中的氢气分压,非常高的压差(2500-2900 kPa)可提高氢气回收率,非常低的GHSV(<150)可提高水力停留时间(HRT) ,我们的结果值得关注。在长期稳定性测试过程中监测的气体组成表明,渗透物侧由97.8%(体积)的H-2组成,渗余物侧含有67.8%(体积)的CO2和22.2%(体积)的CH4。当通过CH4燃烧在滞留物流中回收能量时,使用基于Pd的复合膜反应器可完成燃烧前碳的捕集。

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