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首页> 外文期刊>International Journal of Greenhouse Gas Control >Techno-economic assessment of hydrogen selective membranes for CO2 capture in integrated gasification combined cycle
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Techno-economic assessment of hydrogen selective membranes for CO2 capture in integrated gasification combined cycle

机译:整体气化联合循环中用于CO2捕集的氢选择性膜的技术经济评估

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摘要

In this study, the application of Pd-based H-2-selective membranes in integrated gasification combined cycle (IGCC) plants with CO2 capture is performed from both technical and economic perspective. After a preliminary assessment, the membrane separation section is selected and designed on several membrane modules in series with adiabatic high temperature shift in between. The adoption of membrane module with 19 membrane tubes was mainly driven by techno-economics assessment and plant operation issues. Two different plant lay-outs are proposed: in the first configuration, which is more conventional, all the hydrogen is separated at high pressure and sent to the gas turbine. This lay-out achieves very high net electric efficiency (about 40%), but requires large membrane surface area with penalties from economic point of view (cost of CO2 avoided about 50% higher than reference case). The membrane module cost accounts for more than 25% on the total investment. In the second configuration, which is an innovative part of this work, a proportion of the hydrogen is separated at low pressure and used to post-fire the heat recovery steam generator. This configuration preserves the very high efficiency of the previous case but reduces significantly the membrane surface area; the membrane cost share over the total investment drops to 15%. The resulting cost of CO2 avoided is 36(sic)/t(CO2), equal to the reference case, with large possibility of improvements thanks to the conservative membrane design selected.
机译:在这项研究中,从技术和经济角度进行了基于Pd的H-2-选择性膜在具有CO2捕集的整体气化联合循环(IGCC)工厂中的应用。经过初步评估后,选择膜分离段并将其设计在串联的数个膜组件上,并在其间进行绝热高温转换。采用带有19个膜管的膜组件的主要原因是技术经济评估和工厂运营问题。提出了两种不同的工厂布局:在第一种配置(这是更常规的配置)中,所有氢都在高压下分离并输送到燃气轮机。这种布局可实现很高的净电效率(约40%),但需要大的膜表面积,从经济角度考虑会受到处罚(避免的CO2成本比参考案例高约50%)。膜组件成本占总投资的25%以上。在第二种配置中,这是这项工作的创新部分,一部分氢气在低压下被分离出来,用于后热回收蒸汽发生器。这种配置保留了前一种情况的极高效率,但大大减小了膜的表面积;膜成本占总投资的比例下降到15%。避免产生的二氧化碳成本为36(标准煤)/吨(二氧化碳),与参考案例相同,由于选择了保守的膜设计,改进的可能性很大。

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