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Sorption-enhanced water gas shift reaction for high-purity hydrogen production: Application of a Na-Mg double salt-based sorbent and the divided section packing concept

机译:吸附增强的水煤气变换反应,用于高纯度制氢:Na-Mg双盐基吸附剂的应用和分段装填概念

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Hydrogen is considered a promising environmentally benign energy carrier because it has high energy density and produces no pollutants when it is converted into other types of energy. The sorption-enhanced water gas shift (SE-WGS) reaction, where the catalytic WGS reaction and byproduct CO2 removal are carried out simultaneously in a single reactor, has received considerable attention as a novel method for high-purity hydrogen production. Since the high-purity hydrogen productivity of the SE-WGS reaction is largely dependent on the performance of the CO2 sorbent, the development of sorbents having high CO2 sorption capacity is crucial. Recently, a Na-Mg double salt-based sorbent has been considered for high-temperature CO2 capture since it has been reported to have a high sorption capacity and fast sorption kinetics. In this study, the SE-WGS reaction was experimentally demonstrated using a commercial catalyst and a Na-Mg double salt-based sorbent. However, the SE-WGS reaction with a one-body hybrid solid, a physical admixture of catalyst and sorbent, showed poor reactivity and reduced CO2 sorption uptake. As a result, a divided section packing concept was suggested as a solution. In the divided section packing method, the degree of mixing for the catalyst and sorbent in a column can be controlled by the number of sections. High-purity hydrogen (<10 ppm CO) was produced directly from the SE-WGS reaction with divided section packing, and the hydrogen productivity was further improved when the reactor column was divided into more sections and packed with more sorbent.
机译:氢被认为是一种有前途的环境友好型能源载体,因为它具有高能量密度,并且在转化为其他类型的能量时不产生任何污染物。作为一种高纯度制氢的新方法,吸附增强型水煤气变换(SE-WGS)反应在单个反应器中同时进行WGS催化反应和副产物CO2去除,因此受到了广泛的关注。由于SE-WGS反应的高纯度氢气生产率在很大程度上取决于CO2吸附剂的性能,因此开发具有高CO2吸附能力的吸附剂至关重要。近来,人们已经考虑到一种基于Na-Mg复盐的吸附剂用于高温CO2捕集,因为据报道该吸附剂具有很高的吸附能力和快速的吸附动力学。在这项研究中,SE-WGS反应是使用商业催化剂和Na-Mg双盐基吸附剂进行实验证明的。但是,与单体杂化固体(催化剂和吸附剂的物理混合物)的SE-WGS反应显示出较差的反应性并降低了CO2吸附吸收。结果,提出了分段包装的概念作为解决方案。在分段装填法中,塔中催化剂和吸附剂的混合程度可以通过区段数来控制。分段填充的SE-WGS反应直接产生了高纯度氢气(<10 ppm CO),当将反应器塔分成更多部分并填充更多吸附剂时,氢气生产率进一步提高。

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