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Effect of Fluid Temperature and Uniformly Accelerated Rotation of the Inner Sphere on the Selection of the Flow Pattern in a Spherical Layer

机译:流体温度和内球匀加速旋转对球形层流型选择的影响

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摘要

The process of the selection of one of the two flow patterns possible in the hysteresis region, when the Reynolds number is varied in different directions, and differing with respect to the azimuthal wavenumber, 3 or 4, is experimentally investigated. The flow pattern selection proceeds under the influence of an increase in the rotation velocity of the inner sphere at a constant acceleration, the post-acceleration velocity remaining constant. The spherical layer thickness is equal to the inner sphere radius and the outer boundary is fixed. It is established that there is a time lag between the beginning (end) of the sphere acceleration and the beginning (end) of the variation in the measured azimuthal velocity component. It is found that the acceleration necessary for one flow pattern to be replaced by the other significantly depends not only on the Reynolds numbers at which the acceleration begins and ends but also on the fluid temperature in the layer. It is shown that the temperature dependence can be attributed to the variation in the Reynolds number corresponding to the position of the hysteresis boundary when the working fluid viscosity is varied in the layer.
机译:实验研究了当雷诺数沿不同方向变化并且相对于方位波数3或4不同时,在滞后区域中可能选择的两种流动模式之一的过程。在恒定加速度的情况下,在内部球体的旋转速度增加的影响下进行流型选择,而后加速速度保持恒定。球形层的厚度等于内球半径,外边界是固定的。已经确定,在球加速度的开始(结束)与所测量的方位速度分量的变化的开始(结束)之间存在时间差。已经发现,一个流动模式被另一流动模式替代所必需的加速度不仅取决于加速度开始和结束的雷诺数,而且还取决于层中的流体温度。已经表明,当层中的工作流体粘度变化时,温度依赖性可以归因于雷诺数的变化,该变化对应于磁滞边界的位置。

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