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Kinetic modeling and optimization of parameters for biomass pyrolysis: A comparison of different lignocellulosic biomass

机译:生物质热解参数的动力学建模与优化:不同木质纤维素生物质的比较

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摘要

A primitive element for the development of sustainable pyrolysis processes is the study of thermal degradation kinetics of lignocellulosic waste materials for optimal energy conversion. The study presented here was conducted to predict and compare the optimal kinetic parameters for pyrolysis of various lignocellulosic biomass such as wood sawdust, bagasse, rice husk, etc., under both isothermal and non-isothermal conditions. The pyrolysis was simulated over the temperature range of 500-2400 K for isothermal process and for heating rate range of 25-165 K/s under non-isothermal conditions to assess the maximum pyrolysis rate of virgin biomass in both cases. Results revealed that by increasing the temperature, the pyrolysis rate was enhanced. However, after a certain higher temperature, the pyrolysis rate was diminished which could be due to the destruction of the active sites of char. Conversely, a decrease in the optimum pyrolysis rate was noted with increasing reaction order of the virgin biomass. Although each lignocellulosic material attained its maximum pyrolysis rate at the optimum conditions of 1071 K and 31 K/s for isothermal and non-isothermal conditions, respectively, but under these conditions, only wood sawdust exhibited complete thermal utilization and achieved final concentrations of 0.000154 and 0.001238 under non-isothermal and isothermal conditions, respectively.
机译:用于开发可持续热解过程的原始元素是木质纤维素废料热降解动力学的研究,以获得最佳能量转化。此处提出的研究是为了预测和比较各种木质纤维素生物质的热解的最佳动力学参数,例如木锯末,甘蔗渣,稻壳等,在等温和非等温条件下。在500-2400k的温度范围内模拟热解,用于等温工艺,在非等温条件下加热速率范围为25-165 k / s,以评估两种情况下的原始生物量的最大热解率。结果表明,通过增加温度,增强了热解率。然而,在一定较高的温度之后,将热解率降低,这可能是由于炭的活性位点的破坏。相反,随着原始生物质的反应顺序的增加,注意到最佳热解率的降低。虽然每个木质纤维素材料在1071k和31k / s的最佳条件下,分别在等温和非等温条件下达到其最大热解率,但在这些条件下,只有木锯末表现出完全的热利用,并达到0.000154的最终浓度在非等温和等温条件下0.001238。

著录项

  • 来源
    《Energy Sources》 |2019年第18期|1690-1700|共11页
  • 作者单位

    Univ Engn & Technol Lahore Dept Chem Polymer & Composite Mat Engn KSK Campus Lahore Pakistan;

    Univ Engn & Technol Lahore Dept Chem Engn Lahore Pakistan;

    Univ Engn & Technol Lahore Dept Chem Polymer & Composite Mat Engn KSK Campus Lahore Pakistan|Delft Univ Technol Dept Hydraul Engn Rivers Ports Waterways & Dredgi Fac Civil Engn & Geosci Delft Netherlands;

    Univ Teknol PETRONAS Dept Chem Engn Bandar Seri Iskandar Perak Malaysia;

    Univ Engn & Technol Lahore Dept Chem Polymer & Composite Mat Engn KSK Campus Lahore Pakistan;

    Univ Engn & Technol Lahore Dept Chem Polymer & Composite Mat Engn KSK Campus Lahore Pakistan;

    Univ Engn & Technol Lahore Dept Chem Polymer & Composite Mat Engn KSK Campus Lahore Pakistan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Pyrolysis; kinetic modeling; lignocellulolsic residue; optimization;

    机译:热解;动力学建模;木质纤维素渣;优化;

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