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首页> 外文期刊>International Journal of Greenhouse Gas Control >Prediction and validation of external cooling loop cryogenic carbon capture (CCC-ECL) for full-scale coal-fired power plant retrofit
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Prediction and validation of external cooling loop cryogenic carbon capture (CCC-ECL) for full-scale coal-fired power plant retrofit

机译:外部冷却回路低温碳捕集(CCC-ECL)的预测和验证,用于大规模燃煤电厂改造

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Bench-scale experiments and Aspen Plus (TM) simulations document full-scale, steady-state performance of the external cooling loop cryogenic carbon capture (CCC-ECL) process for a 550 MWe coal-fired power plant. The baseline CCC-ECL process achieves 90% CO2 capture, and has the potential to capture 99+ % of CO2, SO2, PM, NO2, Hg, and most other noxious species. The CCC-ECL process cools power plant flue gas to 175 K, at which point solid CO2 particles desublimate as the flue gas further cools to 154K. Desublimating flue gas cools in a staged column in direct contact with a cryogenic liquid and produces a CO2-lean flue gas that warms against the incoming flue gas before venting. The CO2/contacting liquid slurry separates through a filter to produce a CO2 stream that warms to 233 K and partially flashes to provide a CO2-rich product. The CO2-rich product (99.2%) liquefies under pressure to form a product for enhanced oil recovery (EOR) or sequestration. All contacting liquid streams cool and cycle back to the staged column. An internal CF4 refrigeration cycle transfers heat from melting CO2 to desublimating CO2 by cooling contact liquid. An external cooling loop of natural gas or other refrigerant provides the additional heat duty to operate the cryogenic process. The nominal parasitic power loss of operating CCC-ECL is 82.6 MWe or about 15% of the coal-fired power plant's rated capacity. In different units, the energy penalty of CCC-ECL is 0.74 MdJ(e)/kg CO2 captured and the resulting net power output is decreased to 467 MWe. Lab- and skid-scale measurements validate the basic operation of the process along with the thermodynamics of CO2 solids formation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:基准规模的实验和Aspen Plus(TM)模拟记录了550 MWe燃煤电厂外部冷却回路低温碳捕获(CCC-ECL)工艺的全尺寸,稳态性能。基准CCC-ECL工艺可实现90%的CO2捕集,并有潜力捕集99%以上的CO2,SO2,PM,NO2,Hg和大多数其他有害物质。 CCC-ECL工艺将发电厂的烟道气冷却至175 K,此时,随着烟道气进一步冷却至154K,固体CO2颗粒会升华。升华后的烟气在与低温液体直接接触的分级塔中冷却,并产生贫CO2烟气,该烟气在通气之前先与进入的烟气加热。与CO2 /接触的液体浆料通过过滤器分离,产生CO2物流,该物流加热至233 K,并部分闪蒸,从而提供富含CO2的产品。富含CO2的产品(99.2%)在压力下会液化以形成用于提高采油率(EOR)或封存的产品。所有接触的液体流冷却并循环回到分级塔。内部CF4制冷循环通过冷却接触液体将热量从熔化的CO2转移到使CO2升华。天然气或其他制冷剂的外部冷却回路为运行低温过程提供了额外的热量。运行中的CCC-ECL的标称寄生功率损耗为82.6 MWe,约占燃煤电厂额定容量的15%。在不同的单位中,CCC-ECL的能量损失为0.74 MdJ(e)/ kg二氧化碳捕获量,所得净功率输出降至467 MWe。实验室规模和防滑规模的测量结果验证了该过程的基本操作以及形成二氧化碳固体的热力学。 (C)2015 Elsevier Ltd.保留所有权利。

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