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Energy efficiency of oxygen enriched air production technologies: Cryogeny vs membranes

机译:富氧空气生产技术的能源效率:低温与膜

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Oxygen Enriched Air (OEA) is already used for numerous chemical, medical and industrial applications (e.g. combustion enhancement for natural gas furnaces, coal gasification) and more recently attracted attention for hybrid carbon capture processes. Membrane separation has shown growing interest for OEA production, providing an alternative to conventional air separation processes such as cryogenic distillation and pressure swing adsorption. Nevertheless, based on the current polymeric materials performances, membranes are usually considered to be competitive only for medium O2 purity (25-40%) and small scale plants (10-25 tons/day). Improvement in membrane materials permeability and permselectivity (O2 over N2) is often reported to be a critical issue in order to increase the attainable O2 purity and to make the process more energy efficient. Recently, several membrane materials have been reported to show performances far above the permeability/selectivity trade-off of dense polymers. In this study, the potential of current and prospective membrane materials to achieve OEA production thanks to a single stage process is analysed through a rigorous simulation approach. The two processes (membrane and cryogenic distillation) are finally critically compared in terms of energy efficiency (kW h/ton O2), depending on O2 purity and on membrane material selectivity levels.
机译:富氧空气(OEA)已经用于许多化学,医学和工业应用中(例如,天然气炉的燃烧增强,煤气化),最近更受到混合碳捕集工艺的关注。膜分离已显示出对OEA生产的兴趣,这为常规空气分离工艺(如低温蒸馏和变压吸附)提供了替代方法。然而,基于当前的聚合材料性能,通常仅在中等O2纯度(25-40%)和小规模工厂(10-25吨/天)的情况下才认为隔膜具有竞争力。膜材料的渗透性和渗透选择性(相对于N2而言为O2)的改善通常被报告为关键问题,目的是提高可达到的O2纯度并提高工艺的能源效率。近来,已经报道了几种膜材料显示出远高于致密聚合物的渗透性/选择性折衷的性能。在这项研究中,通过严格的模拟方法分析了当前和预期的膜材料通过单步工艺实现OEA生产的潜力。最后,根据氧气的纯度和膜材料的选择性水平,对两种方法(膜蒸馏和低温蒸馏)的能效(kW h / ton O2)进行了严格的比较。

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