Thermal performance investigation of a mini natural circulation loop for solar PV panel or electronic cooling simulated by lattice Boltzmann method

J. Bocanegra, A. Marchitto, M. Misale
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引用次数: 9

Abstract

The natural circulation loop (NCL) consists of a thermal-hydraulic system that convoys thermal energy from a heat source to a heat sink without a pump. Applications of those loops can be found in solar energy, geothermal, nuclear reactors, and electronic cooling. The lattice Boltzmann method is a numerical method that can simulate thermal-fluid dynamics, using a mesoscopic approach based on the Boltzmann equation for the density function. A square NCL model with fixed temperatures at the heater and heat sink sections was developed in a bi-dimensional lattice with double distribution dynamics, one distribution for the hydrodynamic field and the other for the thermal field. The different cooler–heater configurations (vertical or horizontal) were investigated. We found that by positioning the source or sink vertically, the flow direction can be controlled. In contrast, in a loop with symmetric horizontal heater horizontal cooler configuration where both fluid directions are equally probable. The effectiveness of the loop was studied by calculating the heat sink temperature gradient. The lower value was obtained for the horizontal heater horizontal cooler orientation (0.71) and the higher value for the vertical heater vertical cooler configuration with an increment of 34%; simultaneously, the flow rate (Reynolds number) was reduced by 47%.
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格子玻尔兹曼法模拟太阳能光伏板或电子冷却的小型自然循环回路的热性能研究
自然循环回路(NCL)由一个热液压系统组成,该系统在没有泵的情况下将热能从热源输送到散热器。这些回路的应用可以在太阳能、地热、核反应堆和电子冷却中找到。晶格玻尔兹曼方法是一种可以模拟热流体动力学的数值方法,使用基于密度函数的玻尔兹曼方程的介观方法。在具有双重分布动力学的二维晶格中,在加热器和散热器部分建立了具有固定温度的方形NCL模型,一种分布用于流体动力场,另一种分布于热场。研究了不同的冷却器-加热器配置(垂直或水平)。我们发现,通过垂直定位源或汇,可以控制流动方向。相反,在具有对称水平加热器和水平冷却器配置的回路中,两个流体方向的可能性相等。通过对散热器温度梯度的计算,对环路的有效性进行了研究。水平加热器-水平冷却器方向的值较低(0.71),垂直加热器-垂直冷却器配置的值较高,增量为34%;同时,流速(雷诺数)降低了47%。
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来源期刊
International Journal of Energy Production and Management
International Journal of Energy Production and Management Social Sciences-Sociology and Political Science
CiteScore
2.20
自引率
0.00%
发文量
24
审稿时长
26 weeks
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