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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >An integrated de-carbonization supercritical coal-fired power plant incorporating a supplementary steam turbine, process heat recovery and a modified boiler structure
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An integrated de-carbonization supercritical coal-fired power plant incorporating a supplementary steam turbine, process heat recovery and a modified boiler structure

机译:一种集成的脱碳超临界燃煤发电厂,包括补充汽轮机,工艺热回收和改性锅炉结构

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摘要

Monoethanolamine (MEA) based CO2 capture in coal-fired power plants would consume a huge amount of the steam bleed from the steam turbines for the solvent regeneration. The unmatched steam bleed parameters for the solvent regeneration, as well as the huge amount of the process waste heat within the CO2 capture process, inevitably bringing about a significant efficiency penalty. In this study, a novel de-carbonization supercritical coal-fired power plant, which encompasses a supplementary steam turbine (SST), process heat recovery and a modified boiler heating exchangers configuration was proposed. In the proposed system, the steam bleeds for the reboiler and part of the regenerative heaters are coming from the SST, which is located in the upstream of the reheater (steam side), instead of the high and intermediate-pressure turbines (IPT), making the parameters of the steam bleed more matched with the solvent regeneration and feed water heating. In addition, part of the process heat within the CO2 capture/compression unit was efficiently recovered and beneficially used to heat the ambient air before its entering the air pre-heater. The saved flue gas can then be used to heat the feed/condensed water in the low-temperature economizer (LTE), saving part of the steam bleed from the turbines. The configuration of the superheaters/reheaters, as well as the air preheaters were also modified. The mass and energy balance as well as the system thermodynamic performance were determined by the developed models and process simulation. The economic performance of the proposed system was assessed by the cost of electricity (COE) and the cost of CO2 avoided (COA). Finally, the off-design performance of the proposed system was determined. Results showed that the energy efficiency penalty of the proposed system could decrease by 3.86%points as compared to the reference system. The COE and COA of the proposed system without considering the CO2 transportation and storage cost were $86.11/MWh and $36.92/ton CO2, respectively, both less than those of the reference plant. The off-design operation analysis indicated that the proposed plant also featured a thermodynamics superiority in a wide range of power load variation.
机译:基于单乙醇胺(MEA)的基于燃煤发电厂的CO2捕获将消耗大量的蒸汽涡轮机用于溶剂再生的蒸汽。无与伦比的蒸汽出血参数,用于溶剂再生,以及CO2捕获过程中的巨大过程废热,不可避免地引起了显着的效率惩罚。在本研究中,提出了一种新的脱碳超临界燃煤发电厂,其包括补充汽轮机(SST),工艺热回收和改进的锅炉加热交换器构造。在所提出的系统中,用于再沸器和再生加热器的一部分的蒸汽出血来自SST,其位于再热器(蒸汽侧)的上游,而不是高和中压涡轮机(IPT),使蒸汽排放的参数更符合溶剂再生和进料水加热。另外,在CO 2捕获/压缩单元内的部分过程热量被有效地回收并有利地用于在进入空气预热器之前加热环境空气。然后可以使用保存的烟道气来在低温节能器(LTE)中加热进料/冷凝水,从而节省从涡轮机排出的蒸汽部分。还修饰了过热剂/再美分的装置,以及空气预热器。通过开发的模型和工艺模拟确定了质量和能量平衡以及系统热力学性能。通过电力(COE)的成本评估拟议系统的经济绩效,避免了二氧​​化碳的成本(COA)。最后,确定了所提出的系统的偏离设计性能。结果表明,与参考系统相比,所提出的系统的能效罚款可减少3.86%。拟议系统的COE和COA,不考虑二氧化碳运输和储存费用为86.11 / MWH和36.92美元/吨二氧化碳,分别低于参考工厂。非设计操作分析表明,所提出的工厂还在各种电力负载变化中具有热力学优势。

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