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Coal pyrolysis in a fluidized bed reactor simulating the process conditions of coal topping in CFB boiler

机译:流化床反应器中煤的热解模拟CFB锅炉装煤的工艺条件

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摘要

Simulating the conditions of pyrolytic topping in a fluidized bed reactor integrated into a CFB boiler, the study was devoted to the reaction fundamentals of coal pyrolysis in terms of the production characteristics of pyrolysis oil in fluidized bed reactors, including pyrolysis oil yield, required reaction time and the chemical species presented in the pyrolysis oil. The results demonstrated that the maximal pyrolysis oil yield occurred on conditions of 873 K, with a reaction time of 3 min and in a reaction atmosphere gas simulating the composition of pyrolysis gas. Adding H_2 and CO_2 into the reaction atmosphere decreased the pyrolysis oil yield, while the oil yield increased with increasing the CO and CH_4 contents in the atmosphere. TG-FTIR analysis was conducted to reveal the effects of reaction atmosphere on the chemical species present in the pyrolysis oil. The results clarified that the pyrolysis oil yield reached its maximum when the simulated pyrolysis gas was the reaction atmosphere, but there were slightly fewer volatile matters in the pyrolysis oil than the oil generated in the N_2 atmosphere. All of these results are expected not only to reveal the composition characteristics of the pyrolysis oil from different conditions of the coal topping process but also to optimize the pyrolysis conditions in terms of maximizing the light pyrolysis oil yield and quality.
机译:通过模拟流化床反应器中热解油的生产特性,包括热解油的收率,所需的反应时间,通过模拟流化床反应器中集成的流化床反应器中热解顶的条件,研究了煤热解的反应原理。以及热解油中存在的化学物质。结果表明,最大的热解油产率在873 K的条件下发生,反应时间为3分钟,并且在模拟热解气体组成的反应气氛气体中发生。在反应气氛中加入H_2和CO_2会降低热解油的收率,而随着环境中CO和CH_4含量的增加,油的收率会增加。进行了TG-FTIR分析以揭示反应气氛对热解油中存在的化学物质的影响。结果表明,当模拟热解气为反应气氛时,热解油的收率达到最大值,但热解油中的挥发性物质比N_2气氛中生成的油少。所有这些结果不仅可以揭示来自煤顶工艺不同条件的热解油的组成特征,而且可以在使轻质热解油的产率和质量最大化的方面优化热解条件。

著录项

  • 来源
    《Journal of Analytical & Applied Pyrolysis》 |2011年第1期|p.241-250|共10页
  • 作者单位

    Stote Key Laboratory of Multi-Phase Complex System, Institute of Process Engineering, Chinese Academy of Sciences, ZhongGuanCun Bei'ertiao 1,Haidian District, Beijing 100080, China;

    Stote Key Laboratory of Multi-Phase Complex System, Institute of Process Engineering, Chinese Academy of Sciences, ZhongGuanCun Bei'ertiao 1,Haidian District, Beijing 100080, China;

    Stote Key Laboratory of Multi-Phase Complex System, Institute of Process Engineering, Chinese Academy of Sciences, ZhongGuanCun Bei'ertiao 1,Haidian District, Beijing 100080, China;

    Stote Key Laboratory of Multi-Phase Complex System, Institute of Process Engineering, Chinese Academy of Sciences, ZhongGuanCun Bei'ertiao 1,Haidian District, Beijing 100080, China;

    Stote Key Laboratory of Multi-Phase Complex System, Institute of Process Engineering, Chinese Academy of Sciences, ZhongGuanCun Bei'ertiao 1,Haidian District, Beijing 100080, China;

  • 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

    coal topping; CFB boiler; fluidized bed; reaction atmosphere; pyrolysis oil; TG-FTIR;

    机译:选煤;CFB锅炉;流化床;反应气氛;热解油;TG-FTIR;

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