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Numerical simulation of stability behaviors and heat transfer characteristics for near-critical fluid microchannel flows

机译:近临界流体微通道流动稳定性和传热特性的数值模拟

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This paper deals with the CO2 near-critical convective flow inside channels of micro-scale. Under near critical conditions, the CO2 fluid is very much expandable/compressible, the density and thermal conductivity change to be near one order of magnitude lower when temperature goes near the critical point. At the same time the Prandtl number and specific heat also form high peaks. In microchannels the effect of natural convection becomes much smaller and the highly thermal expansive fluid with very small thermal diffusivity will act like a periodic thermal plume structure evolution mode. The current study, transient stability and heat transfer characteristics of near-critical microchannel flow are analyzed by solving conservative equations of Mass, Momentum and Energy together with non-Boussinesq incorporation of thermal physical properties. The numerical study is conducted under the ranges of epsilon(T) = 0.00023 - 0.06533 and epsilon(P) = 0.01626 - 0.21951 (for critical distance parameters) with boundary heat flux (from several hundreds to 50,000 W/m(2)). It is found that in microchannels vortex flow is generated by applied boundary heat flux. The thin hot boundary perturbation and thermal-mechanical process of near-critical fluids are major factors. The local span-wise and horizontal parameter changes are also analyzed for the unique near-critical fluid flow. The heat transfer characteristics, especially horizontal acceleration and expanding features are also discussed in this study. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文研究了微尺度通道内部的二氧化碳近临界对流。在接近临界条件下,CO2流体具有很大的可膨胀性/可压缩性,当温度接近临界点时,密度和导热系数将降低约一个数量级。同时,Prandtl数和比热也形成高峰。在微通道中,自然对流的影响变得更小,热扩散率极低的高热膨胀流体将像周期性的热羽结构演化模式一样起作用。通过求解质量,动量和能量的保守方程式以及结合热物理特性的非Boussinesq方程,分析了当前研究,近临界微通道流动的瞬态稳定性和传热特性。数值研究是在epsilon(T)= 0.00023-0.06533和epsilon(P)= 0.01626-0.21951(对于关键距离参数)的范围内进行的,其边界热通量为(数百至50,000 W / m(2))。发现在微通道中,涡流是由施加的边界热通量产生的。近临界流体的薄热边界扰动和热机械过程是主要因素。还针对唯一的近临界流体流分析了局部跨度和水平参数变化。这项研究还讨论了传热特性,尤其是水平加速度和膨胀特性。 (C)2015 Elsevier Ltd.保留所有权利。

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