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Modeling Carbon Dioxide Capture by Monoethanolamine Solvent with ASPEN Plus.

机译:使用ASPEN Plus对单乙醇胺溶剂捕集的二氧化碳进行建模。

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摘要

Fossil fuels provide approximately 80% of the world's energy demands. Methods for reducing CO2 emissions resulting from fossil fuels include increasing the efficiency of power plants and production processes, decreasing energy demands, in combination with CO2 capture and long term storage (CCS).;CO2 capture technologies include post-combustion, pre-combustion, and oxyfuel combustion. The amine-based post-combustion CO2 capture from a coal-fired power plant was studied in this thesis.;In case of post-combustion capture, CO2 can be captured by Monoethanolamine solvent (MEA), a primary ethanolamine. MEA can associate with H3O+ to form an ion MEAH+, and can react with CO2 to form a carbonate ion MEACOO-. Commercial code ASPEN Plus was used to simulate the process of CO2 capture and optimize the process parameters and required energy duty. The major part of thermal energy requirement is from the Absorber and Stripper columns. This suggests that process optimization should focus on the Absorption/Desorption process.;Optimization results show that the gas-liquid reaction equilibrium is affected by several operating parameters including solvent flow rate, stream temperature, column operating pressure, flue gas composition, solvent concentration and absorber design. With optimized CO2 capture, the energy consumption for solvent regeneration (reboiler thermal duty) was decreased from 5.76 GJ/ton captured CO2 to 4.56 GJ/t CO2.;On the other hand, the cost of CO2 capture (and sequestration) could be reduced by limiting size of the Absorber column and operating pressure.
机译:化石燃料提供了全球约80%的能源需求。减少化石燃料产生的CO2排放的方法包括提高发电厂和生产过程的效率,降低能源需求,以及与CO2捕获和长期存储(CCS)相结合; CO2捕获技术包括燃烧后,燃烧前,燃烧后,和富氧燃烧。本文研究了燃煤电厂胺基燃烧后CO2的捕集。在燃烧后捕集的情况下,CO2可以通过单乙醇胺溶剂(MEA)(伯乙醇胺)捕集。 MEA可以与H3O +结合形成离子MEAH +,并且可以与CO2反应形成碳酸根离子MEACOO-。商业代码ASPEN Plus用于模拟CO2捕集过程,并优化过程参数和所需的能源负荷。热能需求的主要部分来自吸收塔和汽提塔。这表明工艺优化应侧重于吸收/解吸工艺。优化结果表明,气液反应平衡受多个操作参数的影响,包括溶剂流速,料流温度,塔操作压力,烟气成分,溶剂浓度和吸收体设计。通过优化的CO2捕集,溶剂再生(再沸器热负荷)的能耗从5.76 GJ /吨捕集的CO2降低到4.56 GJ / t CO2。另一方面,CO2捕集(和封存)的成本可以降低通过限制吸收塔的大小和操作压力。

著录项

  • 作者

    Luo, Tianyi.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Engineering Chemical.;Engineering Mechanical.;Energy.
  • 学位 M.S.
  • 年度 2010
  • 页码 60 p.
  • 总页数 60
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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