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首页> 外文期刊>Energy & fuels >Stochastic Reactor-Based Fuel Bed Model for Grate Furnaces
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Stochastic Reactor-Based Fuel Bed Model for Grate Furnaces

机译:用于炉排炉的随机反应器燃料床模型

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摘要

Biomass devolatilization and incineration in grate-fired plants are characterized by heterogeneous fuel mixtures, often incompletely mixed, dynamical processes in the fuel bed and on the particle scale, as well as heterogeneous and homogeneous chemistry. This makes modeling using detailed kinetics favorable but computationally expensive. Therefore, a computationally efficient model based on zero-dimensional stochastic reactors and reduced chemistry schemes, consisting of 83 gas-phase species and 18 species for surface reactions, is developed. Each reactor is enabled to account for the three phases: the solid phase, pore gas surrounding the solid, and the bulk gas. The stochastic reactors are connected to build a reactor network that represents the fuel bed in grate-fired furnaces. The use of stochastic reactors allows us to account for incompletely mixed fuel feeds, distributions of local temperature and local equivalence ratio within each reactor and the fuel bed. This allows us to predict the released gases and emission precursors more accurately than if a homogeneous reactor network approach was employed. The model approach is demonstrated by predicting pyrolysis conditions and two fuel beds of grate-fired plants from the literature. The developed approach can predict global operating parameters, such as the fuel bed length, species release to the freeboard, and species distributions within the fuel bed to a high degree of accuracy when compared to experiments.
机译:燃烧植物中的生物质脱挥发化和焚烧的特征在于异质燃料混合物,经常在燃料床和颗粒尺度上进行不完全混合,动力过程,以及异质和均匀的化学。这使得使用详细的动力学建模有利但计算昂贵。因此,开发了基于零维随机反应器和降低化学方案的计算上有效模型,由83种气相物质和18种表面反应组成。每个反应器都能够考虑三个阶段:固相,围绕固体的孔气体和散装气体。随机反应器连接以构建代表燃烧炉中的燃料床的反应器网络。随机反应堆的使用允许我们考虑每个反应器和燃料床内的局部温度和局部等效比的不完全混合燃料供给。这使我们可以比采用均匀的反应器网络方法更准确地预测释放的气体和排放前体。通过预测来自文献的热解条件和两个燃烧植物的两张燃料床来证明模型方法。开发的方法可以预测全局操作参数,例如燃料床长度,物种释放到干舷,并且与实验相比,在燃料床内的物种在燃料床内的分布到高精度。

著录项

  • 来源
    《Energy & fuels》 |2020年第12期|16599-16612|共14页
  • 作者单位

    Norwegian Univ Sci & Technol Dept Energy & Proc Engn N-7491 Trondheim Norway;

    Norwegian Univ Sci & Technol Dept Energy & Proc Engn N-7491 Trondheim Norway|RISE Fire Res N-7092 Tiller Norway;

    LOGE Deutschland GmbH D-03044 Cottbus Germany;

    Brandenburg Tech Univ Cottbus Chair Thermodynam & Thermal Proc Engn D-03046 Cottbus Germany;

    Norwegian Univ Sci & Technol Dept Energy & Proc Engn N-7491 Trondheim Norway;

  • 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
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