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Computational model for microstructure and effective thermal conductivity of ash deposits in utility boilers.

机译:电站锅炉烟灰沉积物的微观结构和有效导热系数的计算模型。

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摘要

The ash deposits formed in pulverized-coal fired power plants reduce heat transfer rate to furnace wall, super heater tubes, and other heat transfer surfaces. The thermal properties that influence strongly on this heat transfer depend mainly on the microstructure of the ash deposit. This dissertation examines three issues associated with the ash deposits in utility boilers: (1) the three-dimensional model for characterization of the ash deposit microstructures from the sample ash deposits, (2) the computational model for effective thermal conductivity of sintered packed beds with low conductive stagnant fluids, and (3) the application of thermal resistor network model for the effective thermal conductivity of ash deposits in utility boilers.; The SEM image analysis was conducted on two sample ash deposits to characterize three-dimensional microstructure of the ash deposit with several structural parameters using stereology. A ballistic deposition model was adopted to simulate the deposit structure defined by the structural parameters. The inputs for the deposition model were chosen from the predicted and measured physical parameters, such as the size distribution, the probability of the particle rolling, and the degree of the particle sintering. The difference between the microstructure of the sample deposits and the simulated deposits was investigated and compared quantitatively based on the structural parameters defined. Both the sample and the simulated deposits agree in terms of the structural parameters.; The computational model for predicting the effective thermal conductivity of sintered packed beds with low conductive stagnant fluid was built and the heat conduction through the contact area among sintered particles is the dominant mode of heat transfer. A thermal resistor network is used to model the heat conduction among the sintered particles and the thermal resistance among the contacting particles is estimated from both the contact area and the contact angle along the direction of heat flow. The thermal resistor network model was validated by the direction simulation through the finite volume code.; Based on both the ballistic deposition model and the thermal resistor network model, the effective thermal conductivity of the ash deposit was predicted and compared with the measurements on several ash deposits.
机译:煤粉发电厂中形成的灰烬沉积会降低到炉壁,过热器管和其他传热表面的传热速率。强烈影响这种热传递的热性能主要取决于灰烬沉积物的微观结构。本文研究了与公用锅炉中的灰烬沉积有关的三个问题:(1)表征样品灰渣中灰烬微观结构特征的三维模型;(2)带有填料的烧结填充床的有效导热系数的计算模型低导电性滞留流体,以及(3)热电阻网络模型在公用事业锅炉中灰渣沉积的有效导热率中的应用;在两个样品灰渣上进行了SEM图像分析,以利用立体学表征具有几个结构参数的灰渣的三维微观结构。采用弹道沉积模型来模拟由结构参数定义的沉积物结构。沉积模型的输入是从预测和测量的物理参数中选择的,例如尺寸分布,粒子滚动的可能性和粒子烧结的程度。根据定义的结构参数,调查并定量比较了样品沉积物和模拟沉积物的微观结构之间的差异。样品和模拟沉积物在结构参数方面都一致。建立了预测低导热性滞流的烧结填充床有效导热系数的计算模型,并且通过烧结颗粒间接触面积的热传导是传热的主要方式。使用热敏电阻网络对烧结颗粒之间的热传导进行建模,并根据接触面积和沿热流方向的接触角估算接触颗粒之间的热阻。通过有限体积代码的方向仿真验证了热敏电阻器网络模型。基于弹道沉积模型和热阻网络模型,预测了灰烬沉积物的有效热导率,并将其与对几种灰烬沉积物的测量结果进行了比较。

著录项

  • 作者

    Kweon, Soon-Cheol.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Engineering Mechanical.; Engineering Packaging.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;包装工程;工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:46:21

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