二维微通道中磁场作用下自然对流滑移流的数值研究

Q1 Chemical Engineering
Mohsen Saghafian , Mehdi Moslehi , Omid Ali Akbari
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引用次数: 0

摘要

数值研究考察了在对称和非对称壁面温度和恒定横向磁场作用下,开放式垂直微通道中稳态自由对流的发展。一阶模型考虑了通道壁面的滑移速度和温度跳变。采用SIMPLE-C共定位体拟合算法。对流项采用QUICK格式,扩散项采用中心差分格式。研究了Hartmann数、Knudsen数、Grashof数和热流密度比之间的相互作用,以了解它们对速度和温度分布、努塞尔数和质量流量的影响。研究结果表明,对于所有的Grashof数和热流密度比,随着哈特曼数的增大,质量流率随速度的增大而减小。哈特曼数决定沿通道壁和通过通道横截面的温度升高速率。克努森数越高,这些影响就越明显。在较大的格拉什夫数中,磁力对速度和温度分布的影响对所有热流比都减弱,导致努塞尔数随着哈特曼数的增加而发生较小的变化。在较低的Grashof数下,较高的Hartmann数导致平均壁面温度升高,从而降低了努塞尔数。质量流率和平均努塞尔数随热流比的增大而增大。对于所有考虑的哈特曼数,它们的行为随热通量比呈近线性趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical investigation of natural convection slip flow affected by magnetic field in two-dimensional microchannel
The numerical study examines the development of steady state free convection in an open-ended vertical microchannel, heated by symmetric and asymmetric wall temperatures, and with a constant transverse magnetic field. The first order model accounts for slip velocity and temperature jumps at the channel walls. The SIMPLE-C co-located body fitted algorithm is used. For convection terms, QUICK scheme and for diffusion terms, central difference are used. The interplay among Hartmann number, Knudsen number, Grashof number, and heat flux ratio is investigated graphically to understand their influence on velocity and temperature profiles, Nusselt number, and mass flow rate. The results of this research show that, for all Grashof numbers and heat flux ratios, the mass flow rate decreases as the velocity does with an elevated Hartmann number. The Hartmann number determines the rate of temperature increase along the channel walls and through the channel's cross section. In higher Knudsen numbers, these effects are more pronounced. In larger Grashof numbers, the impact of magnetic forces on velocity and temperature profiles wanes for all heat flux ratios, resulting in minor Nusselt number changes with growing Hartmann numbers. At lower Grashof numbers, a higher Hartmann number causes a rise in average wall temperature which decreases the Nusselt number. The mass flow rate and average Nusselt number become greater as heat flux ratio increases. For all considered Hartmann numbers, their behavior shows a near-linear trend with heat flux ratio.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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