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Energy efficiency analysis of pressurized oxy-coal combustion system utilizing circulating fluidized bed

机译:利用循环流化床加压氧燃烧系统能效分析

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摘要

Oxy-fuel combustion with circulating fluidized bed (CFB) is one of the most important technology for carbon dioxide capture and sequestration. However, its development and application are seriously hindered by the low net efficiency mainly resulting from the use of air separation unit (ASU) and carbon dioxide compression and purification unit (CPU). In this work, a pressurized oxy-coal CFB combustion cycle was established mainly including ASU, CFB combustion unit, heat exchangers, power island and CPU. Based on the material and energy conservation, the detailed energy penalties of ASU, CPU, and recirculating compressor were investigated under the varying combustion pressures from 0.105 MPa to 3 MPa. Results revealed that with the increase of combustion pressure, the energy consumption of ASU increases while that of CPU decreases. Compared with PC boiler, the influence of the recirculating compression work on CFB system is negligible in lower pressures. Overall, Higher combustion pressure is favorable to the oxy-coal CFB combustion. By minimizing the penalties and recover more latent heat, the net efficiency rises up from 27.2% to 30.5% in this work while the optimum pressure being about 1.1 MPa. Meanwhile the mole fraction of carbon dioxide can reach 92% which is satisfied with the demands.
机译:具有循环流化床(CFB)的氧 - 燃料燃烧是二氧化碳捕获和封存最重要的技术之一。然而,它的开发和应用受到使用空气分离单元(ASU)和二氧化碳压缩和净化单元(CPU)的低净效率受到严重阻碍的。在这项工作中,建立了加压的氧煤CFB燃烧循环,主要包括ASU,CFB燃烧单元,热交换器,电力岛和CPU。基于材料和节能,在0.105MPa至3MPa的不同燃烧压力下研究了ASU,CPU和再生压缩机的详细能量惩罚。结果表明,随着燃烧压力的增加,ASU的能量消耗随着CPU的增长而增加。与PC锅炉相比,在较低压力下,对CFB系统的再循环压缩工作的影响可忽略不计。总的来说,更高的燃烧压力有利于氧 - 煤CFB燃烧。通过最大限度地减少惩罚并恢复更潜热,净效率在这项工作中的27.2%至30.5%上升,而最佳压力为约1.1MPa。同时,二氧化碳的摩尔分数可达92%,这对需求满意。

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