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Optimization of energy requirements for CO_2 post-combustion capture process through advanced thermal integration

机译:通过先进的热集成优化CO_2后燃烧捕获过程的能量要求

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摘要

The energy optimization modeling work described here was performed to determine efficiency improvements that could be achieved for existing coal-fired power plants to retrofit a partial CO2 capture from the post-combustion flue gas for carbon sequestration through thermal integration. The work presented includes optimization of the mono-ethanol amine (MEA)-based post-combustion CO2 capture to reduce energy requirements that could be achieved at existing power plants by thermal integration of the steam turbine cycle, boiler, CO2 compression train and post-combustion CO2 capture process to offset efficiency and capacity losses that would be incurred by retrofit or implementation of post-combustion CO2 capture. Partial CO2 capture, involving treatment of less than 100% of the flue gas leaving the plant and modular design of the CO2 scrubbing system, was also investigated. Thermal integration of the steam turbine cycle with boiler and CO2 compression train improved cycle and plant performance and offset, in part, the negative effects of post-combustion CO2 capture. The best-analyzed integration options improved gross power output by 5% and net unit efficiency by 1.57%, relative to the conventional MEA process. Operating with 40% CO2 capture increased gross power output by 11.6-14% (depending on the MEA thermal integration option), relative to the conventional MEA integration and 90% CO2 capture. The improvement in net unit performance is larger compared to the improvement in turbine cycle performance because of the CO2 compression work, which is also reduced by partial CO2 capture.
机译:此处描述的能量优化建模工作以确定可以实现现有燃煤发电厂的效率改进,以通过热收入通过燃烧后燃烧气体进行改造的部分CO2捕获。所呈现的作品包括基于燃烧后CO2的单乙醇胺(MEA)的优化,以降低通过蒸汽轮机循环,锅炉,二氧化碳压缩列车和后的现有电厂可以实现的能量要求。燃烧CO2捕获过程以抵消效率和容量损耗,通过改造或实施后燃烧二氧化碳CO2捕获。还研究了部分二氧化碳捕获,涉及处理小于100%烟气的烟气和烟气的烟气和模块化设计的烟气的捕获量。蒸汽轮机循环与锅炉和二氧化碳压缩列车的热整合改善了循环和植物性能和偏移,部分地,燃烧后CO2捕获的负面影响。相对于传统的MEA工艺,最佳分析的集成选项将10%和净单位效率提高5%,净单位效率为1.57%。使用40%的CO2运行捕获11.6-14%的总功率输出(取决于MEA热集成选项),相对于传统的MEA集成和90%CO2捕获。由于CO 2压缩工作,与涡轮机循环性能的改善相比,净单位性能的提高更大,因为CO 2压缩工作,这也通过部分CO2捕获而减少。

著录项

  • 来源
    《Fuel》 |2021年第1期|118940.1-118940.14|共14页
  • 作者单位

    Lehigh Univ Energy Res Ctr 117 ATLSS Dr Bethlehem PA 18015 USA;

    Lehigh Univ Dept Chem & Biomol Engn 111 Res Dr Bethlehem PA 18015 USA;

    Univ N Carolina Mech Engn & Engn Sci 361 Duke Centennial Hall Charlotte NC 28223 USA;

    Lehigh Univ Energy Res Ctr 117 ATLSS Dr Bethlehem PA 18015 USA;

    AES Eastern Energy LP 7725 Lake Rd Barker NY 14012 USA;

    Lehigh Univ Dept Chem & Biomol Engn 111 Res Dr Bethlehem PA 18015 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CO2 capture; MEA; Modeling; Efficiency; Flue gas; Heat integration;

    机译:二氧化碳捕获;MEA;建模;效率;烟气;热量集成;

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