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Analysis of a cooling system of the ultra-supercritical coal-fired power unit integrated with CO_2 capture

机译:集成了CO_2捕集的超超临界燃煤发电机组冷却系统分析

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The subject of this paper is analysis of the cooling system of a conceptual advanced ultra-supercritical coal-fired power unit integrated with a CO2 capture and compression unit (CCU). The capture unit, based on wet chemical absorption using MEA (monoethanolamine), was modelled in Aspen PLUS. The obtained results were used in the power unit model developed in Ebsilon Professional. The aim of the calculations was to determine the cooling demand of the CCU and to define the impact of the integration on the power unit operation under nominal and variable ambient conditions. Performed analyses show that, in nominal conditions, CO2 separation and compression involve an increase in the cooling demand by about 21%. In higher ambient temperatures it is not possible to keep the assumed cooling parameters in the CCU. One of the solutions, is an increase in the area of the heat exchangers. Obtained results showed, that the total surface of all heat exchangers in the CCU has to be increased by 77% (48-89% for individual coolers). The need to collect a considerable amount of extra heat results in a rise in the cooling water temperature and in higher pressure in the steam turbine condenser by 0.3 kPa. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文的主题是对概念性的先进超超临界燃煤动力装置与CO2捕集与压缩装置(CCU)集成的冷却系统的分析。捕获单元基于使用MEA(单乙醇胺)的湿化学吸收,在Aspen PLUS中建模。所得结果用于Ebsilon Professional开发的动力装置模型中。计算的目的是确定CCU的冷却需求,并确定在标称和可变环境条件下集成对功率单元运行的影响。进行的分析表明,在标称条件下,CO2的分离和压缩会导致冷却需求增加约21%。在较高的环境温度下,不可能将假定的冷却参数保留在CCU中。解决方案之一是增加热交换器的面积。获得的结果表明,CCU中所有热交换器的总表面积必须增加77%(单个冷却器的总表面积为48-89%)。收集大量多余热量的需求导致冷却水温度升高,并使蒸汽轮机冷凝器中的压力升高0.3 kPa。 (C)2017 Elsevier Ltd.保留所有权利。

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