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首页> 外文期刊>International Journal of Mechanical Sciences >Control of natural convection in a CNT-water nanofluid filled 3D cavity by using an inner T-shaped obstacle and thermoelectric cooler
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Control of natural convection in a CNT-water nanofluid filled 3D cavity by using an inner T-shaped obstacle and thermoelectric cooler

机译:用内部T形障碍物和热电冷却器控制CNT水纳米流体填充3D腔中的自然对流

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Natural convection of CNT-water nanofluid in a 3D cavity with an inner T-shaped adiabatic obstacle is studied. The cold surface temperature of the enclosure is controlled by using a thermoelectric cooler while the hot surface of the cavity is made inclined. Numerical simulations are performed by using Galerkin weighted residual finite element method. Impact of various pertinent parameters such as current flux of the thermoelectric cooler (between 0.01 A/mm(2) and 0.04 A/mm(2)), ambient temperature (between 298 K and 313 K), inclination of the side surface of 3D cavity (between 0 and 40 center dot), inclination of the T-shaped obstacle (between -90 degrees and 90 degrees), size of the obstacle (between 0.1 H and 0.4 H) and solid nanoparticle volume fraction (between 0 and 4%) on the natural convective heat transfer features is numerically examined. It was observed the local and average heat transfer rates are enhanced with higher values of current flux of the thermoelectric element and solid nanoparticle volume fraction while the effect is reverse with higher hot side temperature of the thermoelectric element and cavity side surface inclination angle. As compared to others, size and inclination of the T-shaped obstacle have slight effects on the variation of Nusselt number and maximum deviation of 6% in the average heat transfer is obtained when the orientation of the obstacle is changed from -45 degrees to -90 degrees. When the minimum and maximum values of cavity inclination angles are compared, 23.70% of reduction in the average Nusselt number is obtained. The heat transfer augmentation with CNT-nanoparticle inclusion is significant and 128% enhancement in the average Nusselt number is achieved at the highest solid nanoparticle volume fraction.
机译:研究了CNT-水纳米流体的自然对流,3D腔内具有内部T形绝热障碍物。通过使用热电冷却器来控制外壳的冷表面温度,而腔的热表面倾斜。使用Galerkin加权残留有限元方法进行数值模拟。各种相关参数的影响,例如热电冷却器的电流通量(0.01a / mm(2)和0.04A / mm(2)),环境温度(在298k和313 k之间),3D侧面的倾斜度腔(0到40中心之间),T形障碍物(在-90度和90度之间),障碍物的尺寸(0.1小时和0.4小时)和固体纳米颗粒体积分数(0至4%之间) )在自然的对流传热中,在数值上检查。观察到局部和平均传热速率随着热电元件的电流通量和固体纳米颗粒体积分数的较高值而增强,而效果具有更高的热电元件和腔侧表面倾斜角度的较高热侧温度。与其他障碍物的T形障碍物的尺寸和倾斜相比,当障碍物的方向从-45度改变时,获得了在营养数量的变化和6%的最大偏差的效果。 90度。当比较腔倾斜角的最小值和最大值时,获得了平均营养数的23.70%的降低。具有CNT-纳米颗粒包含的热传递增强是显着的,并且在最高固体纳米颗粒体积分数下实现了平均冲击数的128%增强。

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