整体气化联合循环
空气分离
工艺工程
气体压缩机
煤气化
工作(物理)
发电
发电站
过程(计算)
灵敏度(控制系统)
过程模拟
联合循环
环境科学
煤
功率(物理)
废物管理
工程类
计算机科学
机械工程
化学
燃气轮机
电气工程
热力学
物理
电子工程
有机化学
氧气
操作系统
作者
David Berstad,Geir Skaugen,Simon Roussanaly,Rahul Anantharaman,Petter Nekså,Kristin Jordal,Stian Trædal,Truls Gundersen
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2022-01-12
卷期号:15 (2): 515-515
被引量:15
摘要
Capture conditions for CO2 vary substantially between industrial point sources. Depending on CO2 fraction and pressure level, different capture technologies will be required for cost- and energy-efficient decarbonisation. For decarbonisation of shifted synthesis gas from coal gasification, several studies have identified low-temperature CO2 capture by condensation and phase separation as an energy- and cost-efficient option. In the present work, a process design is proposed for low-temperature CO2 capture from an Integrated Gasification Combined Cycle (IGCC) power plant. Steady-state simulations were carried out and the performance of the overall process, as well as major process components, were investigated. For the baseline capture unit layout, delivering high-pressure CO2 at 150 bar, the net specific power requirement was estimated to 273 kJe/kgCO2, and an 85% CO2 capture ratio was obtained. The impact of 12 different process parameters was studied in a sensitivity analysis, the results of which show that compressor and expander efficiencies, as well as synthesis gas separation temperature, have the highest impact on power requirements. Modifying the process to producing cold liquid CO2 for ship transport resulted in 16% increase in net power requirements and is well suited for capturing CO2 for ship transport.
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