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首页> 外文期刊>International Journal of Greenhouse Gas Control >A novel IGCC plant with membrane oxygen separation and carbon capture by carbonation-calcinations loop
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A novel IGCC plant with membrane oxygen separation and carbon capture by carbonation-calcinations loop

机译:一种新型的IGCC设备,具有膜氧分离和通过碳化煅烧回路捕集碳的功能

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Environmental degradation due to large emission of pollutants including green house gases from conventional coal based power plants is presently of great concern. On the other hand, existing dependence on the coal based power plants to meet the increasing electricity demand cannot be changed abruptly. Hence developing efficient coal based power plants with low emissions is of great demand. IGCC plants are established technologies for this purpose. However, CO_2 capture still causes substantial reduction in efficiency.In this paper, a novel IGCC plant integrating oxygen separation from air by ceramic membrane and post combustion CO_2 capture by a twin fluidized bed carbonation-calcinations loop has been proposed. A simulation of this conceptualized plant shows significant increase in efficiency than a comparable IGCC plant with conventional pre-combustion capture.The new IGCC concept reached a net efficiency of 43.2% based on LHV for hard coal. Furthermore, the concept allows CO_2 recovery of almost 98% resulting in substantially lower specific CO_2 emissions of 22.1 g/kWh. A complete description of the plant anddetailed simulation results in comparison with the previous IGCC plant are discussed. Additionally, a short parametric study is performed to demonstrate basic process interaction and further thermodynamic potential.
机译:当前,由于来自常规煤基发电厂的大量污染物(包括温室气体)的排放而导致的环境恶化是引起人们极大关注的问题。另一方面,现有对煤电厂满足日益增长的电力需求的依赖性不能突然改变。因此,发展低排放的高效煤基发电厂的需求很大。 IGCC工厂是为此目的而建立的技术。然而,CO_2的捕集仍会导致效率的大幅降低。本文提出了一种新型的IGCC装置,该装置将通过陶瓷膜与空气中的氧气分离并通过双流化床碳酸化-煅烧回路进行燃烧后的CO_2捕集。对这种概念化工厂的模拟显示,其效率大大高于具有常规燃烧前捕集能力的同类IGCC工厂。新的IGCC概念基于LHV对硬煤的净效率达到43.2%。此外,该概念可使CO_2的回收率几乎达到98%,从而使CO_2的比排放大大降低,为22.1 g / kWh。讨论了该设备的完整说明以及与以前的IGCC设备相比的详细仿真结果。此外,进行了简短的参数研究,以证明基本的过程相互作用和进一步的热力学潜力。

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