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首页> 外文期刊>International Journal of Heat and Mass Transfer >Thermal analysis of an inclined heat sink with finned PCM container for solar applications
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Thermal analysis of an inclined heat sink with finned PCM container for solar applications

机译:带有翅片PCM容器的倾斜散热器的热分析,用于太阳能应用

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This paper explores the dynamic thermal performance of Phase Change Materials (PCMs) melting in an inclined finned rectangular container with the top heating mode. Internal external fins are provided to the back surface of the PCM tank considering its applications in the large duty cycle photovoltaic thermal management systems, top heating mode heat sinks and so on. Internal-external fins attached to the back surface of PCM container are proposed for: (a) to lengthen the melting time of PCMs during charging period specifically for peak sunshine hours in the solar applications (b) to enhance PCMs solidification during the discharging period and (c) to improve the heat transfer from the molten PCM to outside after complete melting; so as to reduce heat trapped. RT 42 is used as a PCM in the present study. Unsteady numerical investigations are performed with changing PCM thicknesses, inclination angles and number of extended surfaces. The PCM layer thicknesses are varied with 20 mm, 30 mm and 40 mm for the inclination angles of 30 degrees, 45 degrees, 60 degrees and 90 degrees. PCM container configurations with 2 fins, 3 fins and 4 fins are investigated. The effect of natural convection current is also included in the present numerical simulation using Boussinesq approximations. Control volume approach is used for the estimation of melting time, temperature distribution, velocity magnitude and Nusselt number enhancement. The result shows that the melting time for all the PCM systems increases with decreases in inclination angles and addition of a number of extended surfaces. The average PCM temperature and average velocity magnitude of the PCM decreases with decreasing inclination angle. Incorporation of additional fins than three does not add any significant enhancements in the melting time, although it drastically improves the PCM heat transfer performance. During the completion phase of melting process; using extended surfaces, Nusselt number is increased by 6-9 times for 30 degrees inclined systems and 2-3 time with other inclination angles. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文探讨了在顶部加热模式下在倾斜的翅片矩形容器中熔化的相变材料(PCM)的动态热性能。考虑到其在大占空比光伏热管理系统,顶部加热模式散热器等中的应用,内部外部散热片设置在PCM储罐的背面。建议将附着在PCM容器背面的内外散热片用于:(a)延长充电期间的PCM熔化时间,特别是在太阳能应用中的高峰日照时间(b)增强放电期间的PCM固化,以及(c)改善熔化后的PCM在完全熔化后向外界的热传递;以减少被困的热量。 RT 42在本研究中用作PCM。不稳定的数值研究是通过改变PCM的厚度,倾斜角度和延伸表面的数量来进行的。对于30度,45度,60度和90度的倾斜角度,PCM层的厚度分别变化20毫米,30毫米和40毫米。研究了带有2个散热片,3个散热片和4个散热片的PCM容器配置。自然对流电流的影响也包括在使用Boussinesq逼近的当前数值模拟中。控制体积法用于估算熔化时间,温度分布,速度幅度和努塞尔数增强。结果表明,所有PCM系统的熔化时间都随着倾角的减小和增加许多延伸表面而增加。 PCM的平均PCM温度和平均速度幅度随倾斜角的减小而降低。尽管大大增加了PCM的传热性能,但加入三个以上的附加翅片并不会增加熔化时间,也不会显着增加其熔化时间。在熔化过程的完成阶段;使用扩展表面时,对于30度倾斜系统,Nusselt数将增加6-9倍,而在其他倾斜角度下,Nusselt数将增加2-3倍。 (C)2019 Elsevier Ltd.保留所有权利。

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