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Numerical investigation of natural convection in a rectangular enclosure due to partial heating and cooling at vertical walls

机译:垂直壁局部加热和冷却导致矩形壳体自然对流的数值研究

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A comprehensive numerical investigation on the natural convection in a rectangular enclosure is presented. The flow is induced due to the constant partial heating at lower half of the left vertical wall and partial cooling at upper half of the right vertical wall along with rest walls are adiabatic. In this investigation the Special attention is given to understand the effect of aspect ratio and heat source intensity i.e. Rayleigh number, Ra, on the fluid flow configuration as well as on the local and average heat transfer rates. The range of Rayleigh (Ra) and aspect ratio (A) is taken [10~3,10~6] and [0.5,4] respectively. The results are presented in terms of stream function (ψ), temperature (θ) and heat transfer rates (local Nusselt numbers Nu_L, and average Nusselt numbers Nu). The numerical experiments show that increasing of Ra implies the enhancement of thermal buoyancy force, which in turn increases the thermal convection in the cavity. As a result, the local as well as average heat transfer rate is expected to increase. The local transfer rate {Nu_L) is increases in the small region near the left vertical wall of the left wall of the cavity and after that it is decreases in the middle portion of heated region. And, it start to increase near to the middle point of left wall. It is also observed that the local heat transfer is increases as increases the aspect ratio. The average heat transfer rate (Nu) is increases as the aspect ratio A increases from 0.5 to 1 and beyond that it is decreases smoothly. It is also found that the heat transfer rate attains its maximum value at aspect ratio one.
机译:提出了对矩形罩内自然对流的综合数值研究。由于在左垂直壁的下半部分恒定的局部加热和在右垂直壁的上半部分的恒定冷却以及其余壁是绝热的,因此引起了流动。在这项研究中,要特别注意了解纵横比和热源强度(即瑞利数Ra)对流体流动形态以及局部和平均传热速率的影响。瑞利(Ra)和纵横比(A)的范围分别为[10〜3,10〜6]和[0.5,4]。结果以流函数(ψ),温度(θ)和传热速率(局部Nusselt数Nu_L和平均Nusselt数Nu)表示。数值实验表明,Ra的增加意味着热浮力的增强,进而增加了腔体内的热对流。结果,预期局部和平均传热速率将增加。局部传递速率(Nu_L)在空腔左壁的左垂直壁附近的小区域中增大,然后在加热区域的中部减小。并且,它开始增加到左墙的中点附近。还观察到,局部热传递随着纵横比的增加而增加。随着长径比A从0.5增加到1,平均传热率(Nu)增大,超过此比率,平滑地减小。还发现传热速率在纵横比为1时达到其最大值。

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