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Numerical and experimental study of gas flows in 2D and 3D microchannels

机译:2D和3D微通道中气流的数值和实验研究

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In the experiments conducted at Purdue, the air flow in rectangular cross-section microchannels was investigated using pressure sensitive paint. The high resolution pressure measurements were obtained for inlet-to-outlet pressure ratios from 1.76 to 20 with the outlet Knudsen numbers in the range from 0.003 to 0.4 based on the hydraulic diameter of 151.7 μm and the length-to-height ratio of about 50. In the slip flow regime, the air flow was simulated by the 2D and 3D Navier-Stokes equations with no-slip and slip boundary conditions. For various pressure ratios, the entrance flow development, compressibility and rarefaction effects were observed in both experiments and numerical simulations. It was found that the accurate modeling of gas flows in finite-length channels requires the inlet and outlet reservoirs to be included in computations. Effects of entrance geometry on the friction factor were studied for 3D cases. In both experiments and numerical modeling, significant pressure drop was found starting at the inlet chamber. The numerical modeling also predicted an apparent temperature drop at the channel exit.
机译:在普渡大学进行的实验中,使用压敏涂料研究了矩形横截面微通道中的气流。基于151.7μm的水力直径和大约50的长高比,获得了高分辨率的压力测量结果,其入口与出口的压力比为1.76至20,出口克努森数为0.003至0.4。在滑流状态下,采用无滑移和滑移边界条件的2D和3D Navier-Stokes方程模拟气流。对于各种压力比,在实验和数值模拟中都观察到了入口流的发展,可压缩性和稀疏效应。已经发现,对有限长度通道中的气流进行精确建模需要在计算中包括入口和出口储层。对于3D情况,研究了入口几何形状对摩擦系数的影响。在实验和数值模拟中,都发现从进气室开始出现明显的压降。数值模型还预测了通道出口处的明显温度下降。

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