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首页> 外文期刊>International Journal of Heat and Mass Transfer >Experimental and numerical study of Buoyancy-driven low turbulence flow in rectangular enclosure partially filled with isolated solid blockages
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Experimental and numerical study of Buoyancy-driven low turbulence flow in rectangular enclosure partially filled with isolated solid blockages

机译:浮力驱动的低紊流在矩形壳体中部分充满隔离固体阻塞的实验和数值研究

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This paper considers the natural convection inside an air filled enclosure having several isolated cylindrical blockages distributed within it, and arranged parallel to two vertical walls of the enclosure. These two walls are maintained at different temperatures resulting in a natural convection process inside the enclosure. The objectives are to provide experimental temperature data and to investigate the influence of the blockages proximity within and outside the active vertical wall hydrodynamic boundary layer of the natural convection flow and heat transfer. Experiments were designed with high degree of accuracy to provide reliable temperature data-bank for a range of blockages proximity to the active vertical walls. The test enclosure is an air filled rectangular cavity fixed at 0.97 m × 0.4 m × 1 m, corresponding to the height, width and depth respectively. The top and bottom walls are conducting surface and the temperature difference between the active vertical walls was maintained at 42.2 °C resulting in a characteristic Rayleigh number of 4.04 × 109based on the enclosure height. All the walls of the enclosure were insulated externally while the inner surfaces were covered with conducting plate. The test cavity capability of establishing low turbulence natural convection flows was verified. All temperature data were obtained at steady state and it was verified to be reproducible by repeating the experiment at different times. Also, two-dimensionality was verified via rigorous temperature readings over a period of time. Additional temperature readings were recorded for the air and cylinder surfaces at several distinct locations. Further investigations were conducted using a numerical approach to supplement and validate the experiments.Experimental temperature data collated at various locations within the enclosure show excellent comparison with numerical results and as such provide a useful experimental benchmark temperature data for the validation of low turbulence natural convection flow in enclosure partially filled with isolated solid objects. Our result shows that a significant increment or reduction in air temperature and wall heat transfer could be achieved by varying the blockages proximity, and especially when the blockages are positioned within the hydrodynamic boundary layers of the active vertical walls.
机译:本文考虑了充满空气的机壳内部的自然对流,该机壳内部分布有几个孤立的圆柱形障碍物,并平行于机壳的两个垂直壁布置。这两个壁保持在不同的温度下,从而导致外壳内部自然对流。目的是提供实验温度数据,并研究自然对流流动和传热的有效垂直壁流体动力边界层内部和外部的堵塞附近的影响。实验的设计具有很高的准确性,可以为活动的垂直壁附近的一系列障碍物提供可靠的温度数据库。测试箱是一个固定在0.97 cavitym×0.4 m×1 m的充气矩形腔,分别对应于高度,宽度和深度。顶壁和底壁是导电表面,有效垂直壁之间的温差保持在42.2 C,基于外壳高度,特征瑞利数为4.04××109。外壳的所有壁都在外部绝缘,而内表面则覆盖有导电板。验证了建立低湍流自然对流的试验腔能力。所有温度数据都是在稳定状态下获得的,并且通过在不同时间重复进行实验验证了其可重复性。此外,通过在一段时间内的严格温度读数验证了二维。在几个不同的位置记录了空气和气缸表面的其他温度读数。使用数值方法进行了进一步的研究以补充和验证实验。在外壳内各个位置整理的实验温度数据与数值结果进行了很好的比较,因此为验证低湍流自然对流提供了有用的实验基准温度数据外壳中部分充满隔离的固体物品。我们的结果表明,通过改变堵塞物的接近度,尤其是当堵塞物位于活动垂直壁的流体动力边界层内时,可以显着提高或降低空气温度和壁传热。

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