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Comprehensive analysis of the effect of water injection on performance and emission parameters of the hydrogen fuelled recuperative and non-recuperative gas turbine system

机译:注水对氢气恢复和非恢复燃气轮机系统性能和排放参数的综合分析

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摘要

The increasing need for fossil energy along with waste gases led to both the increase in the environment pollution and search for alternative energy sources. The most important criterion here is to maintain sustainability and find a zero-emission source. In this regard, since hydrogen is obtained from the water electrolysis or the digestion of hydrocarbons, it is one of the alternative clean energy sources. Despite intense usage of the hydrogen in the refineries and industries, it is also predicted to be common use of hydrogen in power systems as fuel soon.The present study analysed the change in performance of gas turbines depending on water injection into the air before the compressor. In the study, two different gas turbine systems (non-recuperative and recuperative) is designed. For the use of hydrogen as a fuel for the designed gas turbine systems, the injected water amount was increased from 0 kg-water/s to 46 kg-water/s, while the GT-Turbine inlet pressure increased from 4 bar to 20 bar. For these circumstances, the performance of the gas turbine systems investigated depending on injected water-air mass flow ratio and GT-Turbine inlet pressure. After comprehensive analyses, the maximum net power production, thermal and exergy efficiencies of the non recuperative gas turbine were calculated as 58,459 kW, 22.33% and 23.07% at 20 bar and 0.031 injected water/air mass flow ratio. The maximum net power production, thermal and exergy efficiencies of the recuperative gas turbine system were calculated as 131,307 kW, 50.16% and 52.70% at 4 bar and 0.057 injected water/air mass flow ratio. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:对化石能量的需求越来越多,废气导致环境污染的增加和​​寻找替代能源。这里最重要的标准是保持可持续性并找到零排放来源。在这方面,由于氢从水电解或烃的消化中获得,因此是替代清洁能源之一。尽管炼油厂和行业中的氢气浓缩,但也预计将常用于电力系统中的氢气作为燃料。目前的研究分析了燃气轮机性能的变化,这取决于压缩机前的空气进入空气中的燃气轮机的性能变化。在该研究中,设计了两种不同的燃气轮机系统(不恢复和恢复)。为了使用氢作为设计的燃气轮机系统的燃料,注入的水量从0 kg水/ s增加到46千克/ s,而GT-涡轮机入口压力从4巴增加到20巴。对于这些情况,根据喷射的水 - 空气质量流量和Gt-汽轮机入口压力来研究燃气轮机系统的性能。在综合分析后,将非恢复燃气轮机的最大净功率,热和漏极效率计算为58,459 kW,22.33%和23.07%,0.031注入水/空气质量流量。恢复燃气涡轮机系统的最大净功率生产,热量和漏极效率计算为131,307 kW,50.16%,52.70%,4巴和0.057注射水/空气质量流量比。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

著录项

  • 来源
    《International journal of hydrogen energy》 |2020年第58期|34254-34267|共14页
  • 作者单位

    Siemens Energy Gas & Power Hydrogen Sales Duisburg Germany;

    Iskenderun Tech Univ Fac Engn & Nat Sci Dept Mech Engn TR-31200 Iskenderun Hatay Turkey;

    Iskenderun Tech Univ Fac Engn & Nat Sci Dept Mech Engn TR-31200 Iskenderun Hatay Turkey;

    Iskenderun Tech Univ Fac Engn & Nat Sci Dept Mech Engn TR-31200 Iskenderun Hatay Turkey;

  • 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; Gas turbine; Water injection; Performance analyses; Recuperator; Emission;

    机译:氢;燃气轮机;注水;性能分析;恢复器;排放;
  • 入库时间 2022-08-18 23:01:24

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