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Off-design point modelling of a 420 MW CCGT power plant integrated with an amine-based post-combustion CO2 capture and compression process

机译:420 mW CCGT发电厂的非设计点建模与基于胺的燃烧后CO2捕集和压缩过程相结合

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© 2016 Elsevier LtdThe use of natural gas for power generation is becoming increasingly important in many regions in the world. Given that the combined cycle gas turbine (CCGT) power stations are lower in capital cost and carbon intensity than their coal-fired counterparts, natural gas fired power stations are considered a vital part of the transition to a low carbon economy. However, CCGTs are not themselves “low carbon” and in order to reach a carbon intensity of less than 50 kgCO2/MWh, it will be necessary to decarbonise them via CCS, with post-combustion CCS currently regarded as being a promising technology for this application. In this study, we present a detailed model of a 420 MW triple-pressure reheat CCGT and evaluate its technical and economic performance under full and part load conditions. We evaluate the technical performance of our CCGT model by comparison to an equivalent model implemented in Thermoflow THERMOFLEX and observe agreement of power output and efficiency to within 4.1% and the temperature profile within the HRSG within 2.9%. We further integrate the CCGT with a dynamic model of an amine based CCS process, and observe a reduction in the base plant efficiency from 51.84% at full-load and 50.23% at 60% load by 8.64% points at full-load and 7.93% points at 60% load. A core conclusion of this paper is that CCGT power plants equipped with post-combustion CCS technologies are well suited to dynamic operation, as might be required in an energy system characterised by high penetrations of intermittent renewable power generation.
机译:©2016 Elsevier Ltd.在世界许多地区,天然气用于发电的重要性日益提高。鉴于联合循环燃气轮机(CCGT)电厂的资本成本和碳强度低于燃煤电厂,因此天然气电厂被视为向低碳经济过渡的重要组成部分。但是,CCGT本身并不是“低碳”,为了达到低于50 kgCO2 / MWh的碳强度,有必要通过CCS对它们进行脱碳,目前燃烧后CCS被认为是一种有前途的技术应用。在这项研究中,我们提出了420兆瓦三压再热CCGT的详细模型,并评估了其在满负荷和部分负荷条件下的技术和经济性能。通过与Thermoflow THERMOFLEX中实现的等效模型进行比较,我们评估了CCGT模型的技术性能,并观察到功率输出和效率在4.1%以内,HRSG内的温度曲线在2.9%以内的一致性。我们进一步将CCGT与基于胺的CCS工艺的动态模型相集成,观察到基本工厂效率从满负荷时的51.84%和60%负荷时的50.23%降低了满负荷时的8.64%和7.93%指向60%的负载。本文的核心结论是,配备有燃烧后CCS技术的CCGT电厂非常适合动态运行,这在以高渗透率的间歇性可再生能源为特征的能源系统中可能是必需的。

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    Adams, T; Mac Dowell, N;

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