首页> 外文会议>Proceedings of the 11th International Conference on Fluidized Bed Technology >BUBBLE CHARACTERSTICS IN A 3-D GAS-SOLID FLUIDIZED BED: PREDICTIONS FROM ULTRA-FAST X-RAY TOMOGRAPHY AND TWO-FLUID MODEL
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BUBBLE CHARACTERSTICS IN A 3-D GAS-SOLID FLUIDIZED BED: PREDICTIONS FROM ULTRA-FAST X-RAY TOMOGRAPHY AND TWO-FLUID MODEL

机译:3-D气固流化床中的气泡特征:超快速X射线断层扫描和两种流体模型的预测

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摘要

The bubble characteristics in a 3-D cylindrical fluidized bed have been investigated both experimentally and numerically.Experiments were performed on a 0.1 m diameter fluidized bed, with alumina oxide particles (diameter ~1 mm) as a fluidizing material.Measurements were done at a spatial resolution of 1 mm and a temporal resolution of 1000 cross-sectional images per second, using an ultrafast electron beam X-ray computed tomography (XRT) setup (Fischer and Hampel 2010).A two-fluid model using kinetic theory of granular flow (Verma et al., 2013) was used to predict the bed dynamics numerically.The equivalent bubble diameter as a function of height is in close agreement with Darton et al.(1977) and Werther (1975) correlations.The bubble size distribution predicted from simulations is broader compared to experiments.Both the bubble rise velocity and the bubble size increase with increase in excess gas velocity.The experimental measurements and simulation predictions are in fair agreement with the Hilligardt and Werther (1986) correlation.
机译:对3-D圆柱流化床中的气泡特性进行了实验和数值研究。在直径为0.1 m的流化床中进行实验,以氧化铝颗粒(直径〜1 mm)作为流化材料。使用超快电子束X射线计算机断层扫描(XRT)装置(1毫米)的空间分辨率和每秒1000幅横截面图像的时间分辨率(Fischer and Hampel 2010)使用颗粒流动力学理论的双流体模型Verma等人(2013年)用于数值预测床层动力学,当量气泡直径随高度的变化与Darton等人(1977年)和Werther(1975年)的相关性非常一致。与实验相比,气泡的上升速度和气泡尺寸都随着过量气体速度的增加而增加。实验测量结果和模拟预测基本吻合与Hilligardt和Werther(1986)的相关性。

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    Eindhoven University of Technology,Dept.of Chemical Engineering and Chemistry PO Box 513,5600 MB Eindhoven,The Netherlands;

    Eindhoven University of Technology,Dept.of Chemical Engineering and Chemistry PO Box 513,5600 MB Eindhoven,The Netherlands;

    Eindhoven University of Technology,Dept.of Chemical Engineering and Chemistry PO Box 513,5600 MB Eindhoven,The Netherlands;

    Eindhoven University of Technology,Dept.of Chemical Engineering and Chemistry PO Box 513,5600 MB Eindhoven,The Netherlands;

    Institute of Fluid Dynamics,Helmholtz-Zentrum Dresden-Rossendorf,Bautzner Landstr.400,01328 Dresden,Germany;

    AREVA Endowed Chair of Imaging Techniques in Energy and Process Engineering,Technische Universit(a)t Dresden,01062 Dresden,Germany;

    Institute of Fluid Dynamics,Helmholtz-Zentrum Dresden-Rossendorf,Bautzner Landstr.400,01328 Dresden,Germany;

    Institute of Fluid Dynamics,Helmholtz-Zentrum Dresden-Rossendorf,Bautzner Landstr.400,01328 Dresden,Germany;

    AREVA Endowed Chair of Imaging Techniques in Energy and Process Engineering,Technische Universit(a)t Dresden,01062 Dresden,Germany;

    Institute of Fluid Dynamics,Helmholtz-Zentrum Dresden-Rossendorf,Bautzner Landstr.400,01328 Dresden,Germany;

    AREVA Endowed Chair of Imaging Techniques in Energy and Process Engineering,Technische Universit(a)t Dresden,01062 Dresden,Germany;

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