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PRESSURE-DRIVEN GAS FLOWS IN LONG RECTANGULAR MICROCHANNELS WITH UNIFORM HEAT FLUX BOUNDARY CONDITIONS

机译:具有均匀热流边界条件的长矩形微通道中的压力驱动气流

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This paper focuses on the numerical simulation of pressure-driven gas flow in long microchannels, with uniform heat flux wall boundary conditions. The flow is assumed to be two-dimensional and the momentum and energy equations are solved, considering variable properties, rarefaction effects, including velocity slip, thermal creep and temperature jump, compressibility effects and viscous dissipation. A combined serial-parallel algorithm is employed to simulate the flow in long microchannels. The numerical solution is found to be much more involved than that for the isothermal boundary conditions and the convergence of the scheme to be much slower, as expected. The numerical results are also quite different and, in some cases, quite unexpected. The thermal and hydraulic characteristics are carefully examined and analyzed. It is found that a nonlinear temperature profile arises along the microchannel due to the combined effects of pressure work and viscous dissipation. Similarly, compressibility effects lead to a nonlinear centerline pressure profile. The ratio of pressure work to viscous dissipation is investigated as a function of the Knudsen number and is found to increase with the Knudsen number. The rarefaction effects are found to increase the Nusselt number near the outlet and to decrease it near the inlet. An increase in the inlet/outlet pressure ratio is seen to significantly enhance microchannel cooling.
机译:本文侧重于长微通道中的压力驱动气流的数值模拟,具有均匀的热通量壁边界条件。假设流动是二维的,并且考虑到可变性质,稀释效应,包括速度滑移,热蠕变和温度跳跃,可压缩效果和粘性耗散的流动和能量方程。使用组合的串行并行算法来模拟长微型通道的流量。发现数值解决方案比预期的更慢的等温边界条件以及方案的收敛性更加涉及。数值结果也很差异,在某些情况下,非常意外。仔细检查和分析热和液压特性。发现由于压力工作和粘性耗散的综合影响,沿着微通道产生非线性温度曲线。类似地,可压缩性效应导致非线性中心线压力分布。作为knudsen号的函数研究了压力工作与粘性耗散的比率,并发现与knudsen数增加。发现稀疏效应增加了出口附近的营养数,并将其靠近入口。观察到入口/出口压力比的增加显着增强了微通道冷却。

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