首页> 外文会议>ASME(American Society of Mechanical Engineers) Turbo Expo vol.4; 20060506-11; Barcelona(ES) >AN INTEGRATED GASIFICATION ZERO EMISSION PLANT USING OXYGEN PRODUCED IN A MIXED CONDUCTING MEMBRANE REACTOR
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AN INTEGRATED GASIFICATION ZERO EMISSION PLANT USING OXYGEN PRODUCED IN A MIXED CONDUCTING MEMBRANE REACTOR

机译:使用混合导电膜反应器生产的氧气的综合气化零排放厂

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Integrated gasification combined cycles (IGCCs) exhibit conditions favourable to CO_2 sequestration. In this article, simulations of the Integrated Gasification Zero Emission Plant (IGZEP) concept are presented. The idea behind this concept is to use oxygen produced in a Mixed Conducting Membrane (MCM) reactor in an IGCC. Previous studies have shown that it is beneficial to integrate an MCM reactor in a natural gas fired cycle, and the objective of this article is to quantify the advantages of integrating the same type of reactor with an IGCC the way it is suggested in the IGZEP concept. The core of the membrane reactor is a ceramic membrane, which separates oxygen from air exiting the gas turbine compressor. The reactor operates at temperatures around 900 ℃ and is driven by a difference in oxygen partial pressure. The oxygen permeating the membrane is used in a Texaco gasifier, whereas the oxygen-depleted air is sent to a high temperature combustor. The rest of the cycle is essentially similar to a "standard" IGCC. The simulations performed resulted in a CO_2 capture penalty of 6.4 % points (Lower Heating Value, LHV) and a net cycle efficiency of 32.5 % (LHV). Despite this quite low efficiency, the IGZEP concept is interesting since one of the main reasons for the low net efficiencies is the low efficiency of the Texaco gasifier model used. Other models for Texaco gasifiers with higher efficiency have been found in literature. Nevertheless, it is judged more interesting to compare IGZEP's penalty for oxygen generation with that of existing competitors. It is shown that the total oxygen production penalty can be decreased from 4.9 % points in the reference case to 4.3 % points in IGZEP. That is, about 0.6 % points in net efficiency may be gained by replacing a standard (non-integrated) cryogenic air distillation unit with an MCM reactor. Other studies have also shown that this strategy may entail lower investment and electricity production costs.
机译:整体气化联合循环(IGCC)表现出有利于CO_2隔离的条件。在本文中,将对集成气化零排放工厂(IGZEP)概念进行仿真。该概念背后的想法是使用在IGCC中的混合传导膜(MCM)反应器中产生的氧气。先前的研究表明,将MCM反应堆集成到天然气燃烧循环中是有益的,并且本文的目的是量化以IGZEP概念中提出的方式将相同类型的反应堆与IGCC集成的优势。 。膜反应器的核心是陶瓷膜,可将氧气与离开燃气轮机压缩机的空气分离。反应器在900℃左右的温度下运行,并受氧分压差的驱动。渗透膜的氧气用于Texaco气化炉中,而贫氧空气则被送入高温燃烧室。其余的周期基本上类似于“标准” IGCC。进行的模拟导致CO_2捕集损失为6.4%(低发热量,LHV),净循环效率为32.5%(LHV)。尽管效率非常低,但IGZEP概念仍然很有趣,因为净效率低的主要原因之一是所使用的Texaco气化炉模型的效率低。在文献中发现了具有更高效率的德士古气化炉的其他型号。但是,将IGZEP的制氧罚款与现有竞争对手的罚款进行比较被认为更有趣。结果表明,总氧气生产损失可以从参考案例中的4.9%点降低到IGZEP中的4.3%点。即,通过用MCM反应器代替标准的(非集成的)低温空气蒸馏装置,可获得净效率的约0.6%的点。其他研究也表明,这种策略可能需要较低的投资和电力生产成本。

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