Efficiency and Flexibility Improvement of Amine-Based Post Combustion CO2 Capturing System (CCS) in Full and Partial Loads

J. Asadi, Lateef A. Jolaoso, P. Kazempoor
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引用次数: 1

Abstract

Optimal design and operation of the CO2 captures system integrated with power plants are crucial to minimize process energy consumption and associated costs. In this paper, the conventional process of monoethanolamine (MEA)-based post-combustion CO2 capturing system is modified to reduce the process energy consumption for flexible and efficient integration to fossil-fueled power plants. Considering a flue gas stream similar to coal-fired power plants, rigorous rate-based modeling of the MEA-based CO2 capture system is performed in Aspen Plus using the electrolyte nonrandom two-liquid thermodynamic package (ENRTL-RK). Afterward, three main process modifications, including lean vapor compression, rich solvent preheating, and rich solvent splitting, are investigated in both full and partial load conditions to assess their impacts on the process efficiency and energy consumption. The results demonstrate that the lean vapor compression and the rich solvent preheating modifications significantly reduce the process energy consumption by 13.5% and 8.4%, respectively. However, the addition of extra equipment such as compressors, flash vessels, and heat exchangers increase the capital and operational costs of the capture plant. Also, rich solvent splitting, which requires minor modifications in process equipment, reduces the energy consumption by 5.4%. Moreover, it is observed that the operating conditions for CO2 capture vary significantly between partial and full load conditions, and considerable reduction in energy consumption and improvement in process flexibility can be achieved at optimal process conditions.
胺基燃烧后CO2捕集系统(CCS)全负荷和部分负荷效率和灵活性的提高
与发电厂集成的二氧化碳捕获系统的优化设计和运行对于最小化过程能耗和相关成本至关重要。本文对传统的基于单乙醇胺(MEA)的燃烧后CO2捕集系统工艺进行了改进,以降低工艺能耗,实现与化石燃料电厂的灵活高效集成。考虑到类似燃煤电厂的烟气流,在Aspen Plus中使用电解质非随机双液体热力学包(ENRTL-RK)对基于mea的CO2捕集系统进行了严格的基于速率的建模。在此基础上,研究了贫蒸汽压缩、富溶剂预热和富溶剂裂解三种主要工艺改造,并在满负荷和偏负荷条件下对其工艺效率和能耗进行了评价。结果表明,贫蒸汽压缩和富溶剂预热改性分别显著降低了工艺能耗13.5%和8.4%。然而,增加额外的设备,如压缩机、闪蒸容器和热交换器,增加了捕集厂的资本和运营成本。此外,需要对工艺设备进行少量修改的富溶剂裂解可降低5.4%的能耗。此外,观察到CO2捕集的运行条件在部分和满负荷工况之间存在显著差异,在最优工艺条件下可以实现能耗的显著降低和工艺灵活性的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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