首页> 外文期刊>International Journal of Heat and Mass Transfer >Non-Oberbeck-Boussinesq effects due to large temperature differences in a differentially heated square cavity filled with air
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Non-Oberbeck-Boussinesq effects due to large temperature differences in a differentially heated square cavity filled with air

机译:在充满空气的差温加热方腔中由于温差大而产生的非Oberbeck-Boussinesq效应

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摘要

We numerically investigate non-Oberbeck-Boussinesq (NOB) effects due to large temperature differences in a two-dimensional differentially heated square cavity using low-Mach-number equations. The working fluid is air and the Prandtl number Pr is 0.71 for the reference state. The considered Rayleigh numbers Ra range from 10(5) to 10(9). Various temperature differences Delta(T) over cap between the hot and cold plates are considered and the maximum value is up to 360 K. The critical Rayleigh number for the onset of unsteadiness decrease with increasing temperature differences. The NOB effects on the temperature and velocity fields are investigated. It is found that both the thermal and velocity boundary layers become thicker near the hot plate while they get thinner near the cold plates under NOB conditions. The central temperature is increased compared to Oberbeck-Boussinesq (OB) cases considering NOB effects. The normalized center temperature theta(c) roughly increases linearly with increasing temperature differential epsilon. The horizontal velocity near the top plate is normally enhanced by NOB effects while it is normally decreased near the bottom plate under NOB conditions. In spite of these marked qualitative differences in the NOB flow relative to OB flow, the overall integral quantities like the Nusselt number Nu and Reynolds number Re are insensitive to NOB effects and retain their Ra-scaling exponents. The Nu has a minor decrease under NOB conditions. The maximum decrease is only about 3% for temperature difference as large as 360 K. Within OB approximation, the Nusselt number Nu is found to scale as similar to Ra-0.27, and the inverse thermal boundary layer thickness lambda(-1)(theta) also scale as similar to Ra-0.27. These scaling exponents do not change under NOB conditions. The Reynolds number based on the root mean square (r.m.s) velocity Re-rms increases slightly for NOB cases. We also find Re-rms similar to Ra-0.37, Re-w similar to(RaRev)-Re-0.50 similar to Ra-0.45 for OB cases, where Re-w/Re-v are Reynolds number based on maximum magnitude of vertical/horizontal velocity over the whole cell. The NOB effects almost have no influence on these scaling exponents. (C) 2018 Elsevier Ltd. All rights reserved.
机译:我们使用低马赫数方程,通过二维温差方腔中的大温差,对非Oberbeck-Boussinesq(NOB)效应进行了数值研究。工作流体是空气,参考状态的普朗特数Pr为0.71。所考虑的瑞利数Ra在10(5)到10(9)之间。考虑了热板和冷板之间在盖上的各种温度差Delta(T),最大值高达360K。随着温度差的增加,用于不稳定的开始的临界瑞利数减小。研究了NOB对温度和速度场的影响。发现在NOB条件下,热边界层和速度边界层在热板附近都变厚,而在冷板附近则变薄。考虑到NOB效应,与Oberbeck-Boussinesq(OB)案例相比,中心温度升高。归一化的中心温度theta(c)随温度差ε的增加而大致呈线性增加。顶板附近的水平速度通常由NOB效应增强,而在NOB条件下通常在底板附近降低。尽管NOB流量相对于OB流量存在明显的质量差异,但像Nusselt数Nu和雷诺数Re那样的整体积分量对NOB效应不敏感,并保留了它们的Ra缩放指数。在NOB条件下,Nu的含量略有下降。当温度差高达360 K时,最大减少量仅为3%左右。在OB近似值内,发现Nusselt数Nu的缩放比例类似于Ra-0.27,逆热边界层厚度lambda(-1)(theta) )的缩放比例类似于Ra-0.27。这些缩放指数在NOB条件下不会改变。对于NOB病例,基于均方根(r.m.s)速度Re-rms的雷诺数略有增加。对于OB情况,我们还发现Re-rms类似于Ra-0.37,Re-w类似于(RaRev)-Re-0.50类似于Ra-0.45,其中Re-w / Re-v是基于垂直最大量的雷诺数整个细胞的水平速度。 NOB效应几乎对这些缩放指数没有影响。 (C)2018 Elsevier Ltd.保留所有权利。

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