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Natural convective flow and heat transfer of Nano-Encapsulated Phase Change Materials (NEPCMs) in a cavity

机译:腔中纳米封装相变材料(NEPCM)的自然对流流动和热传递

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Free convective flow and heat transfer of a suspension of Nano Encapsulated Phase Change Materials (NEPCMs) in an enclosure is studied. NEPCM particles are core-shell structured with Phase Change Material (PCM) as the core. The enclosure is a square cavity with top and bottom insulated walls and differentially-heated isothermal vertical walls. The NEPCM particles circulate under natural convection inside the cavity. The PCM cores undergo phase change from solid to liquid and absorb some of the surrounding's heat in the form of latent heat in the hot region, and release the absorbed heat in the cold region by solidification. The governing equations representing the conservation of mass, flow, and heat of NEPCM suspension are introduced in the form of partial differential equations. The governing equations are transformed into non-dimensional form and solved by the finite element method. A grid check and validation test are performed to ensure the accuracy of the results. The outcomes show that the fusion temperature of NEPCM particles is the key factor affecting the heat transfer enhancement of NEPCMs in the natural convection flow. The enhancement of heat transfer is highly dependent on the non-dimensional fusion temperature, theta(f), and very good performance can be achieved in the range of 1/4 theta(f) 3/4. Comparing to the base fluid, a relative enhancement of about 10% can be achieved by using NEPCMs at a non-dimensional fusion temperature of 1/4. (C) 2019 Elsevier Ltd. All rights reserved.
机译:研究了纳米封装相变材料(NEPCM)悬浮体在一个罩体内的自由对流和热传递。 NEPCM粒子是以相变材料(PCM)为核的核-壳结构。外壳是一个方腔,具有顶部和底部隔热壁以及加热差温的垂直立壁。 NEPCM粒子在腔体内自然对流下循环。 PCM磁芯经历了从固态到液态的相变,并在热区域以潜热的形式吸收了周围的一些热量,并在凝固时通过冷却释放了吸收的热量。以偏微分方程的形式介绍了表示NEPCM悬架的质量,流量和热量守恒的控制方程。控制方程被转换为无量纲形式,并通过有限元法求解。进行网格检查和验证测试以确保结果的准确性。结果表明,NEPCM粒子的熔融温度是影响自然对流中NEPCM传热增强的关键因素。传热的增强高度依赖于无量纲熔化温度theta(f),在1/4

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