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HIGH ORDER SLIP AND THERMAL CREEP EFFECTS IN MICRO CHANNEL NATURAL CONVECTION

机译:微通道自然对流中的高阶滑移和热蠕变效应

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Developing natural convection gaseous flows in an open-ended parallel plate vertical microchannel with isothermal wall conditions are numerically investigated to analyze the rarefaction effects on heat transfer and flow characteristics in slip flow regime. The Navier-Stokes and energy equations are solve by a control volume technique subject to higher-order temperature jump and velocity slip conditions including thermal creep effects. The flow and thermal fields in the entrance and fully developed regions along with the axial variations of velocity slip, temperature jump, and heat transfer rates are examined in detail. It is found that rarefaction effects significantly influence the flow and thermal fields such that mass flow and heat transfer rates are increased considerably as compared to the continuum regime. Furthermore, thermal creep contribution to the velocity slip is found to be dominant close to the channel inlet and vanishes in the fully developed region, while velocity slip approaches a finite value there. Both Mass flow rate and thermal entrance length increase with increasing Knudsen number in slip flow regime.
机译:数值研究了在等温壁面条件下的开放式平行平板垂直微通道中自然对流气流的流动,以分析稀疏化对滑流状态下传热和流动特性的影响。 Navier-Stokes和能量方程是通过控制体积技术求解的,该技术受制于更高阶的温度跳跃和速度滑移条件,包括热蠕变效应。详细研究了入口区域和完全展开区域中的流场和热场,以及速度滑移,温度跃变和传热速率的轴向变化。发现稀疏效应显着影响流场和热场,从而与连续状态相比,质量流量和传热速率大大提高。此外,发现热蠕变对速度滑移的贡献在通道入口附近占主导,并在完全展开的区域中消失,而速度滑移在此处接近有限值。在滑流状态下,质量流量和热入口长度均随Knudsen数的增加而增加。

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