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首页> 外文期刊>Philosophical transactions of the Royal Society. Mathematical, physical, and engineering sciences >Analysis of the flow field and pressure drop in fixed-bed reactors with the help of lattice Boltzmann simulations
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Analysis of the flow field and pressure drop in fixed-bed reactors with the help of lattice Boltzmann simulations

机译:借助格子Boltzmann模拟分析固定床反应器的流场和压降

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The pressure drop of technical devices is a crucial property for their design and operation. In this paper, we show how the results of lattice Boltzmann simulations can be used in science and engineering to improve the physical understanding of the pressure drop and the flow inhomogeneities in porous media, especially in sphere-packed fixed-bed reactors with low aspect ratios. Commonly used pressure drop correlations are based on simplified assumptions such as the capillary or tortuosity model, which do not reflect all hydrodynamic effects. Consequently, empirical correlations for certain classes of media have been introduced in the past to bridge the gap between the models and the experimental findings. As is shown in this paper by the detailed analysis of the velocity field in the void space of packed beds, the pressure drop is due to more complex hydrodynamics than considered in the above-mentioned models. With the help of lattice Boltzmann simulations, we were able to analyse the different contributions to the total dissipation, namely shear and deformation of the fluid, for different geometries over a wide range of Reynolds numbers. We further show that the actual length of the flow paths changes considerably with the radial and circumferential position. [References: 21]
机译:技术设备的压降是其设计和操作的关键属性。在本文中,我们展示了如何将格子玻尔兹曼模拟的结果用于科学和工程,以改善对多孔介质中压降和流动不均匀性的物理理解,尤其是在低纵横比的球状填充固定床反应器中。常用的压降相关性基于简化的假设,例如毛细管或曲折模型,它们不能反映所有流体动力效应。因此,过去已经引入了某些类别的媒体的经验相关性,以弥合模型与实验结果之间的差距。正如本文通过对填充床空隙空间中的速度场的详细分析所显示的那样,压降是由于比上述模型中考虑的流体动力学更复杂的缘故。借助格子Boltzmann模拟,我们能够分析在大范围雷诺数范围内不同几何形状对总耗散的不同贡献,即流体的剪切和变形。我们进一步表明,流路的实际长度随着径向和圆周位置的变化而显着变化。 [参考:21]

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