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NUMERICAL INVESTIGATION OF SLIP FLOW AND HEAT TRANSFER IN ROTATING RECTANGULAR MICROCHANNELS

机译:旋转矩形微通道中滑流和传热的数值研究

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Investigation of fluid flow and heat transfer in rotating microchannels is important for centrifugal microfluidics, which has emerged as an advanced technique in biomedical applications and chemical separations. The pseudo forces namely the centrifugal force and the Coriolis force arising as a consequence of the rotating reference frame change the flow pattern significantly from the parabolic profile in a non-rotating channel. The convective heat transfer process is also influenced by the secondary flow introduced by the rotational effect. Moreover, if the microchannel wall is hydrophobic, slip flow can occur inside the channel when the conventional no slip boundary condition is no longer valid. In this work, we have numerically investigated the flow and heat transfer inside a straight rotating rectangular microchannel in the slip flow regime. A pressure based finite volume technique in a staggered grid was applied to solve the steady incompressible Navier-Stokes and energy equations. It has been observed that, depending on the rotational velocity, different slip velocities are induced at the channel walls. The average fluid temperature increases with the increase of rotation as convective heat transfer mechanism is increased due to the secondary flow. However, the slip boundary condition has a negligible effect on the temperature profiles.
机译:研究旋转微通道中的流体流动和传热对于离心微流控非常重要,离心微流控已成为生物医学应用和化学分离领域的一项先进技术。由于旋转参考框架而产生的伪力,即离心力和科里奥利力,从非旋转通道的抛物线轮廓显着改变了流型。对流传热过程还受到旋转效应引入的二次流的影响。而且,如果微通道壁是疏水的,则当常规的无滑动边界条件不再有效时,在通道内部会发生滑流。在这项工作中,我们在滑流状态下数值研究了直旋转矩形微通道内的流动和传热。采用交错网格中基于压力的有限体积技术来求解稳定的不可压缩Navier-Stokes和能量方程。已经观察到,取决于转速,在通道壁处引起不同的滑动速度。随着对流换热机制由于二次流动而增加,平均流体温度随着旋转的增加而增加。但是,滑移边界条件对温度分布的影响可忽略不计。

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