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Pre-combustion carbon dioxide capture by gas–liquid absorption for Integrated Gasification Combined Cycle power plants

机译:整体气化联合循环发电厂通过气液吸收来捕集燃烧前二氧化碳

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摘要

Among various configurations of fossil fuel power plants with carbon dioxide capture, this paper focuses on pre-combustion capture technology applied to an Integrated Gasification Combined Cycle power plant using gas–liquid absorption. The paper proposes a detailed study and optimization of plant design (column height and packed dimensions) with CO2 capture process using different solvents as: aqueous solutions of alkanolamine, dimethyl ethers of polyethylene glycol, chilled methanol and N-Methyl-2-pyrolidone. By developing simulations in Aspen Plus, the following performance results of these physical and chemical solvents, mentioned above, are discussed: overall energy consumption (power consumption, heating and cooling agent consumption), CO2 specific emissions, net electric power output and plant efficiency. The paper presents as well, the total investment capital cost of an IGCC coal mixed with biomass (sawdust) power plant generating 425–450 MW net electricity with (70% CO2 capture, 80% CO2capture and 90% CO2 capture) and without pre-combustion CO2 capture. Simulation results show that for evaluated solvents for CO2 capture, the physical solvent, dimethyl ethers of polyethylene glycol, is more energy efficient that the other physical and chemical solvents investigated. Regarding the economic study, implementation of pre-combustion CO2 capture on IGCC plant, using dimethyl ethers of polyethylene glycol, leads to an increase of the capital cost with about 19.55% for 70% CO2 capture, 20.91%for 80% CO2 capture and 22.55% for 90% CO2 capture.
机译:在具有二氧化碳捕获功能的化石燃料发电厂的各种配置中,本文着重于将预燃烧捕获技术应用于利用气液吸收的整体气化联合循环发电厂。本文提出了一个详细的研究和优化植物设计(柱高和装箱尺寸)的CO2捕集工艺,并使用以下溶剂:链烷醇胺的水溶液,聚乙二醇的二甲醚,冷却的甲醇和N-甲基-2-吡咯烷酮。通过在Aspen Plus中进行仿真,讨论了上述这些物理和化学溶剂的以下性能结果:总能耗(能耗,加热和冷却剂消耗),CO2排放量,净电力输出和工厂效率。本文还介绍了IGCC煤与生物质(锯末)发电厂混合产生425-450 MW净电力(70%的CO2捕获,80%的CO2捕获和90%的CO2捕获)且没有预先燃烧二氧化碳捕获。模拟结果表明,对于评估的CO2捕集溶剂,物理溶剂聚乙二醇的二甲醚比其他物理和化学溶剂更具能源效率。关于经济研究,使用聚乙二醇的二甲醚在IGCC工厂实施燃烧前CO2捕集导致资本成本的增加,其中70%的CO2捕集约为19.55%,80%的CO2捕集约为20.91%,而22.55 90%的二氧化碳捕获量为%。

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