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Hydrodynamic and thermal slip flow boundary layers over a flat plate with constant heat flux boundary condition

机译:具有恒定热通量边界条件的平板上的流体动力和热滑流边界层

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In this paper the boundary layer flow over a flat plat with slip flow and constant heat flux surface condition is studied. Because the plate surface temperature varies along the x direction, the momentum and energy equations are coupled due to the presence of the temperature gradient along the plate surface. This coupling, which is due to the presence of the thermal jump term in Maxwell slip condition, renders the momentum and energy equations non-similar. As a preliminary study, this paper ignores this coupling due to thermal jump condition so that the self-similar nature of the equations is preserved. Even this fundamental problem for the case of a constant heat flux boundary condition has remained unexplored in the literature. It was therefore chosen for study in this paper. For the hydro-dynamic boundary layer, velocity and shear stress distributions are presented for a range of values of the parameter characterizing the slip flow. This slip parameter is a function of the local Reynolds number, the local Knudsen number, and the tangential momentum accommodation coefficient representing the fraction of the molecules reflected diffusively at the surface. As the slip parameter increases, the slip velocity increases and the wall shear stress decreases. These results confirm the conclusions reached in other recent studies. The energy equation is solved to determine the temperature distribution in the thermal boundary layer for a range of values for both the slip parameter as well as the fluid Prandtl number. The increase in Prandtl number and/or the slip parameter reduces the dimensionless surface temperature. The actual surface temperature at any location of x is a function of the local Knudsen number, the local Reynolds number, the momentum accommodation coefficient, Prandtl number, other flow properties, and the applied heat flux.
机译:本文研究了具有滑动流和恒定热通量表面条件的平板上的边界层流。因为板表面温度沿x方向变化,所以由于沿板表面存在温度梯度,因此动量和能量方程式耦合。这种耦合是由于在麦克斯韦滑移条件下存在热跃变项而引起的,因此动量方程和能量方程不相似。作为初步研究,本文忽略了由于热跳条件引起的这种耦合,从而保留了方程的自相似性。即使对于恒定的热通量边界条件的情况,这个基本问题在文献中仍未得到探讨。因此,本文选择进行研究。对于流体动力边界层,给出了表征滑流的参数值范围的速度和切应力分布。该滑动参数是局部雷诺数,局部克努森数和切向动量调节系数的函数,该系数表示在表面扩散反射的分子分数。随着滑移参数的增加,滑移速度增加,壁剪应力减小。这些结果证实了其他近期研究中得出的结论。求解能量方程式,以确定滑移参数以及流体普朗特数的值范围内的热边界层中的温度分布。普朗特数和/或滑动参数的增加降低了无因次表面温度。在x的任意位置处的实际表面温度是局部Knudsen数,局部雷诺数,动量调节系数,Prandtl数,其他流动特性以及所施加的热通量的函数。

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