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A novel approach for treatment of CO_2 from fossil fired power plants, Part A: The integrated systems ITRPP

机译:一种处理化石发电厂CO_2的新颖方法,A部分:集成系统ITRPP

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摘要

The environmental issues, due to the global warming caused by the rising concentration of greenhouse gases in the atmosphere, require new strategies aimed to increase power plants efficiencies and to reduce CO_2 emissions.rnThis two-paper work focuses on a different approach for capture and reduction of CO_2 from flue gases of fossil fired power plant, with respect to conventional post-combustion technologies. This approach consists of flue gases utilization as co-reactants in a catalytic process, the tri-reforming process, to generate a synthesis gas suitable in chemical and energy industries (methanol, DME, etc.). In fact, the further conversion of syngas to a transportation fuel, such as methanol, is an attractive solution to introduce near zero-emission technologies (i.e. fuel cells) in vehicular applications.rnIn this Part A, integrated systems for co-generation of electrical power and synthesis gas useful for methanol production have been denned and their performance has been investigated considering different flue gases compositions. In Part B, in order to verify the environmental advantages and energy suitability of these systems, their comparison with conventional technology for methanol production is carried out.rnThe integrated systems (ITRPP, Integrated Tri-Reforming Power Plant) consist of a power island, based on a thermal power plant, and a methane tri-reforming island in which the power plants' exhausts react with methane to produce a synthesis gas used for methanol synthesis. As power island, a steam turbine power plant fuelled with coal and a gas turbine combined cycle fuelled with natural gas have been considered.rnThe energy and environmental analysis of ITRPP systems (ITRPP-SC and ITRPP-CC) has been carried out by using thermochemical and thermodynamic models which have allowed to calculate the syngas composition, to define the energy and mass balances and to estimate the CO_2 emissions for each ITRPP configuration.rnThe repowering of the base power plants (steam turbine power plant and gas turbine combine cycle) is very high because of the large amount of steam produced in the tri-reforming island (in the ITRPP-SC is about of 64%, while in the ITRPP-CC is about of 105%). The reduction in the CO_2 emissions has been estimated in 83% (15.4 vs. 93.4 kg/GJ_(Fuelinput)) and 84% (8.9 vs. 56.2 kg/GJ_(Fuelinput)) for the ITRPP-SC and ITRPP-CC respectively.
机译:由于大气中温室气体浓度升高导致全球变暖而引起的环境问题,要求采取旨在提高电厂效率和减少CO_2排放量的新策略。这两篇论文着重探讨了另一种捕集和减少排放的方法。化石燃料发电厂的烟气中的CO_2与传统的后燃烧技术相比。该方法包括在催化过程,三重整过程中利用烟气作为共反应物,以生成适用于化学和能源行业(甲醇,DME等)的合成气。实际上,将合成气进一步转化为运输燃料(例如甲醇)是在车辆应用中引入近零排放技术(即燃料电池)的一种有吸引力的解决方案。在此A部分中,用于电联产的集成系统已经确定了可用于生产甲醇的合成气和合成气,并考虑了不同的烟道气成分对其性能进行了研究。在B部分中,为了验证这些系统的环境优势和能源适用性,将它们与甲醇生产的常规技术进行了比较。集成系统(ITRPP,集成三重整电厂)由一个功率岛组成,一个火力发电厂和一个甲烷三重整岛,发电厂的废气在其中与甲烷反应生成用于甲醇合成的合成气。作为动力岛,已经考虑了以燃煤为燃料的蒸汽轮机发电厂和以天然气为燃料的燃气轮机联合循环。rn使用热化学方法对ITRPP系统(ITRPP-SC和ITRPP-CC)进行了能源和环境分析热力学模型可以计算出合成气的组成,定义能量和质量平衡并估算每种ITRPP配置的CO_2排放量。rn基础电厂(汽轮机电厂和燃气轮机联合循环)的重新装机非常之所以高,是因为在三重整岛中产生了大量的蒸汽(在ITRPP-SC中约为64%,而在ITRPP-CC中约为105%)。对于ITRPP-SC和ITRPP-CC,据估计CO_2排放量分别减少了83%(15.4比93.4 kg / GJ_(燃料输入))和84%(8.9比56.2 kg / GJ_(燃料输入))。

著录项

  • 来源
    《International journal of hydrogen energy》 |2009年第9期|4014-4020|共7页
  • 作者

    M. Minutillo; A. Perna;

  • 作者单位

    Department of Industrial Engineering, University of Cassino, Via G. di Biasio, 43, 03043 Cassino, Frosinone, Italy;

    Department of Industrial Engineering, University of Cassino, Via G. di Biasio, 43, 03043 Cassino, Frosinone, Italy;

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

    hydrogen; tri-reforming; CO_2 capture; flue gases; power plants;

    机译:氢;三重改革二氧化碳捕获;烟气发电厂;
  • 入库时间 2022-08-18 00:29:53

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