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Assessment of energy saving potential of an industrial ethylene cracking furnace using advanced exergy analysis

机译:使用先进的Deergy分析评估工业乙烯裂解炉的节能电位

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摘要

Steam cracking furnace is a high energy-consuming equipment in the ethylene plant. Reducing the exergy destruction and losses associated with the steam cracking furnace can increase the thermodynamic efficiency of the system and thereby reducing energy penalties. This paper aims to quantitatively evaluate thermodynamic performance of an industrial steam cracking furnace through conventional and advanced exergy analysis in order to assess its energy saving potential. A steady state simulation of an industrial steam cracking furnace with a total feed capacity of 12 t/h was carried out. The simulation was validated by comparing the model prediction results with the industrial data. The conventional exergy analysis shows that the overall exergy efficiency of the steam cracking furnace is found to be 43.43% and the combustion process in the radiation section exhibits the largest exergy destruction followed by the tube reactors in the radiation section. The advanced exergy analysis shows that the combustion process has the highest unavoidable exergy destruction. Moreover, the tube reactors in the radiation section has the highest avoidable exergy destruction, followed by the combustion process and the feed-steam mixture superheater in the convection section. Therefore, there is high energy saving potential in the tube reactors, combustion process and feed-steam mixture superheater. The advanced exergy analysis also indicates that efforts on improving the radiation and convection sections should be dedicated to themselves while the thermodynamic performance of the quench system should be improved by reducing the exergy destruction of other interacting components.
机译:蒸汽开裂炉是乙烯厂的高耗能设备。减少与蒸汽裂缝炉相关的驱动破坏和损失可以提高系统的热力学效率,从而减少能量惩罚。本文旨在通过常规和先进的漏洞分析定量评估工业蒸汽裂解炉的热力学性能,以评估其节能潜力。进行了工业蒸汽裂解炉的稳态模拟,具有12吨/小时的总供给容量。通过将模型预测结果与工业数据进行比较来验证模拟。常规的漏洞分析表明,蒸汽裂解炉的总漏效率是43.43%,辐射部分中的燃烧过程表现出最大的辐射破坏,然后是辐射部分中的管反应器。先进的deergy分析表明,燃烧过程具有最高的不可避免的毁灭性破坏。此外,辐射部分中的管反应器具有最高的可避免的漏洞破坏,然后是燃烧过程和对流部分中的馈电蒸汽混合物过热器。因此,管反应器,燃烧过程和进料蒸汽混合物过热器具有高节能电位。先进的Deergy分析还表明,通过降低其他相互作用组分的驱动破坏,应提高淬火系统的热力学性能,指出改善辐射和对流部分的努力。

著录项

  • 来源
    《Applied Energy》 |2019年第15期|113583.1-113583.14|共14页
  • 作者单位

    East China Univ Sci & Technol State Key Lab Chem Engn 130 Meilong Rd Shanghai 200237 Peoples R China;

    East China Univ Sci & Technol State Key Lab Chem Engn 130 Meilong Rd Shanghai 200237 Peoples R China;

    East China Univ Sci & Technol State Key Lab Chem Engn 130 Meilong Rd Shanghai 200237 Peoples R China;

    East China Univ Sci & Technol State Key Lab Chem Engn 130 Meilong Rd Shanghai 200237 Peoples R China|Univ Sheffield Dept Chem & Biol Engn Sheffield S1 3JD S Yorkshire England;

    East China Univ Sci & Technol State Key Lab Chem Engn 130 Meilong Rd Shanghai 200237 Peoples R China;

  • 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

    Steady state modelling/simulation; Thermodynamic performance; Conventional exergy analysis; Advanced exergy analysis; Steam cracking furnace; Ethylene manufacturing;

    机译:稳态造型/仿真;热力学性能;常规漏洞分析;先进的漏斗分析;蒸汽裂解炉;乙烯制造;

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