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首页> 外文期刊>Journal of Aerosol Science >Axisymmetric thermophoresis of an aerosol particle in a spherical cavity
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Axisymmetric thermophoresis of an aerosol particle in a spherical cavity

机译:球形腔内气溶胶颗粒的轴对称热孔

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The thermophoretic motion of a spherical particle located at an arbitrary position in a gaseous medium inside a spherical cavity is investigated semi-analytically. The temperature gradient is applied along the line connecting the particle and cavity centers. In the slip-flow regime for the gas motion, the temperature jump, frictional slip, thermal creep, and thermal stress slip are permitted at the solid surfaces. The energy and momentum equations are solved using two spherical coordinate frames with respect to the cavity and particle and the boundary conditions at the solid surfaces are satisfied by a collocation method. Results of the thermophoretic velocity are obtained for various values of the relative thermal and surface properties of the particle and cavity, their radius ratio, as well as the normalized distance between their centers (eccentricity of the particle position). In the particular case of the migration of a spherical particle at the center of the cavity, these results agree excellently with the analytical solutions. Interestingly, the contribution to the particle velocity from the thermoosmotic flow at the cavity wall can be equivalent to or even much more important than that from the wall-corrected thermophoretic driving force. The dimensionless thermophoretic velocity of the confined particle decreases significantly with an increase in the normalized distance between the particle and cavity centers or the particle-to-cavity radius ratio. This velocity increases with an increase in the relative thermal conductivity of the solid phases for a specified configuration.
机译:分析地研究了位于球形腔内的气态介质中任意位置的球面颗粒的热孔运动。沿连接颗粒和腔中心的线施加温度梯度。在气体运动的防滑状态下,在固体表面允许温度跳跃,摩擦滑动,热蠕变和热应力滑动。使用相对于空腔和颗粒的两个球形坐标框架来解决能量和动量方程,并且通过搭配方法满足固体表面的边界条件。获得颗粒和腔的相对热和表面性质的各种值的热电泳速度的结果,它们的半径比以及其中心之间的归一化距离(颗粒位置的偏心率)。在腔中心在腔中心迁移球形颗粒的特定情况下,这些结果与分析解决方案完全同意。有趣的是,从腔壁处的热渗流流的颗粒速度的贡献可以相当于或甚至比来自壁校正的硫化机驱动力更重要的更重要。限制颗粒的无量纲硫料速度随着颗粒和腔中心之间的归一化距离或颗粒到腔半径比的增加而显着降低。该速度随着特定配置的固态相的相对导热率的增加而增加。

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