Experimental study of a compact cooling system with heat pipes for powerful LED matrices

D. Pekur, V. Sorokin, Yu. E. Nikolaenko
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引用次数: 2

Abstract

LED light sources, and powerful multichip light sources in particular, are currently widely used for lighting household and industrial premises. With an increase in power, the amount of heat increases as well, which leads to an increase in the temperature of semiconductor crystals and, accordingly, to a decrease in the reliability of LEDs and a change in their photometric characteristics. Therefore, when developing the design of LED lighting devices, special attention is paid to thermal management. Since the early 2000s, heat pipes have been widely used to efficiently remove heat from powerful electronic components. They do not require power for moving the working fluid and are most suitable for use in LED luminaires. In this study, the authors carry out a computer simulation of a cooling system based on heat pipes, which is then used to design and test a powerful compact LED lamp with a thermal load of up to 100 W. Heat pipes with a length of 150 mm are used to remove heat from the LED light source to the heat exchanger rings located concentrically around it. The heat exchanger rings are cooled by natural convection of the ambient air. The results of computer modeling of the temperature field of the developed cooling system show that at a power of the LED light source of 140.7 W, the temperature of the LED matrix case is 60.5°C, and the experimentally measured temperature is 61.3°C. The experimentally determined thermal power of the LED matrix is 91.5 W. The p–n junction temperature is 79.6°C. The total thermal resistance of the cooling system is 0.453°C/W. The obtained results indicate the effectiveness of the developed design.
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大功率LED矩阵热管紧凑冷却系统的实验研究
LED光源,尤其是强大的多芯片光源,目前广泛用于家庭和工业场所的照明。随着功率的增加,热量也会增加,这导致半导体晶体的温度升高,从而导致led的可靠性降低,并改变其光度特性。因此,在开发设计LED照明器件时,要特别注意热管理。自21世纪初以来,热管已被广泛用于有效地从强大的电子元件中去除热量。它们不需要电力来移动工作流体,最适合用于LED灯具。在这项研究中,作者对基于热管的冷却系统进行了计算机模拟,然后将其用于设计和测试热负荷高达100 W的大功率紧凑型LED灯。采用长度为150mm的热管,将LED光源的热量输送到以LED光源为中心的热交换器环上。热交换器环通过周围空气的自然对流冷却。对所开发的冷却系统温度场的计算机模拟结果表明,在LED光源功率为140.7 W时,LED矩阵外壳温度为60.5℃,实验测量温度为61.3℃。实验确定LED矩阵的热功率为91.5 W。p-n结温为79.6℃。冷却系统总热阻为0.453℃/W。所得结果表明了所设计方案的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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