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Thermo-economic analyses of IGCC power plants employing warm gas CO_2 separation technology

机译:IGCC电厂采用热气CO_2分离技术的热经济分析

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Integrated gasification combined cycle (IGCC) power plant with dual-stage SelexolTM for carbon capture is compared to pressure swing adsorption (PSA)-based warm gas CO2 capture. Capture with SelexolTM was limited to 83.4% due to high syngas CH4 content while the efficiency was 31.11% HHV resulting in a 1st year cost of electricity (COE) of 148.6 $/MWh. Carbon capture can be increased to 88.6% and efficiency to 33.76% HHV with warm gas CO2 removal. When holding the same carbon capture level as the SelexolTM case, efficiency is increased to 34.20% HHV and after further optimization of the water gas shift (WGS) reactors to 35.63% HHV leading to a lower COE of 127.2 $/MWh. Reaction kinetic models are developed and applied for optimization of WGS reactors to convert syngas CO to CO2. Cost for warm gas carbon capture reduced to 47.5 $/tonne from 66.0 $/tonne for IGCC without carbon capture while CO2 avoided cost reduced from 89.4 $/tonne to 54.3 $/tonne. Carbon capture cost dropped from 88.0 $/tonne to 72.7 $/tonne while the CO2 avoided cost decreased from 112.2 $/tonne to 783 $/tonne over supercritical boiler plant without carbon capture. Furthermore, warm gas cleanup lowered the specific net water withdrawal/usage by 13.4%. (C) 2019 Elsevier Ltd. All rights reserved.
机译:将具有双级SelexolTM的集成气化联合循环(IGCC)电厂用于碳捕集与基于变压吸附(PSA)的暖气CO2捕集进行了比较。由于高合成气CH4含量,SelexolTM的捕集率被限制为83.4%,而HHV的效率为31.11%,导致第一年的电力成本(COE)为148.6 $ / MWh。通过去除热气中的二氧化碳,碳捕获量可以提高到88.6%,效率可以达到33.76%。当保持与SelexolTM情况相同的碳捕集水平时,效率提高到34.20%HHV,并且在进一步优化水煤气变换(WGS)反应器到35.63%HHV后,COE降低了127.2 $ / MWh。开发了反应动力学模型,并将其用于优化WGS反应器以将合成气CO转化为CO2。不带碳捕集的IGCC的热气碳捕获成本从66.0美元/吨降低到47.5美元/吨,而避免二氧化碳的成本从89.4美元/吨降低到54.3美元/吨。与没有碳捕集的超临界锅炉相比,碳捕集成本从88.0美元/吨降至72.7美元/吨,而避免二氧化碳的成本从112.2美元/吨降至783美元/吨。此外,热气净化将单位净水取回/使用量降低了13.4%。 (C)2019 Elsevier Ltd.保留所有权利。

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