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Heat transfer in rotary kilns with interstitial gases

机译:间隙气体在回转窑中的传热

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While slow granular flows have been an area of active research in recent years, heat transfer in flowing particulate systems has received relatively little attention. We employ a computational technique that couples the discrete element method (DEM), computational fluid dynamics (CFD), and heat transfer calculations to simulate realistic heat transfer in a rotary kiln. To maintain simplicity, while simulating the cylindrical kiln, we use a non-uniform grid in our code. Different materials, particle sizes, and rotation speeds are used to track the transition from convection-dominated heat transfer to conduction-dominated heat transfer. At low particle conductivities, the heat transfer is dominated by gas-solid conduction: however, at higher particle conductivities solid-solid conduction plays a more important role. Moreover, our results suggest that the rate of change of the average bed temperature can display a transition as the conductivity of the interstitial medium is increased. At low interstitial transport rates, such as in vacuum, high conductivity, high heat capacity particles get heated most rapidly, but with increased interstitial transport coefficients, lower heat capacity material may get heated faster despite lower values of conductivity. (c) 2008 Elsevier Ltd. All rights reserved.
机译:尽管近年来缓慢的颗粒流一直是活跃的研究领域,但流动的颗粒系统中的热传递却很少受到关注。我们采用了一种结合离散元素法(DEM),计算流体力学(CFD)和传热计算的计算技术,以模拟回转窑中的实际传热。为了保持简单性,在模拟圆柱窑时,我们在代码中使用了非均匀网格。使用不同的材料,粒径和转速来跟踪从对流为主的热传递到传导为主的热传递的过渡。在低颗粒电导率下,传热主要由气固传导控制;但是,在较高颗粒电导率下,固-固传导起更重要的作用。此外,我们的结果表明,随着间隙介质电导率的增加,平均床层温度的变化率可以显示出过渡。在低间隙输运速率下(例如在真空中),高电导率,高热容粒子会被最快速地加热,但是随着间隙输运系数的增加,尽管电导率值较低,但较低热容的材料可能会被更快地加热。 (c)2008 Elsevier Ltd.保留所有权利。

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