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Improved radial heat sink for led lamp cooling

机译:改进的径向散热器,用于LED灯冷却

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摘要

This paper presents a numerical study concerning an improved heat sink for a light emitting diodes (LED) lamp operating under natural convection conditions. Basic geometry of the heat sink is of cylindrical nature, to be obtained from cutting an aluminum extruded bar comprising a cylindrical central core and a number of uniformly distributed radial fins. Minimum diameter of the central core is fixed and the parameters to be explored are the number of fins, their thickness, length (radial dimension) and height. Although not included in the numerical simulations, the thermal resistance due to the use of a thin thermal interface material (TIM) layer between the LED lamp back and the heat sink is taken into account in the analysis. The main objective of the heat sink is to cool the LED lamp so that the lamp maximum temperature at the contact region with the heat sink is maintained below the critical temperature given by the manufacturer. This is a crucial aspect in what concerns the expected lifetime of the LED lamp and should be achieved at the expenses of as low as possible aluminum mass. Taking these criteria in mind, a design procedure is proposed and followed in the search for the improved heat sink to cool a particular LED lamp. Results obtained with the commercial code ANSYS-CFX clearly show the relative importance of the different governing parameters on the heat sink performance and allow the choice of the better solution within the frame of dimensional constrains. Although the present results concern a particular LED lamp, the proposed methodology can be extended to other types of heat sinks for general light and/or electronic components.
机译:本文提出了一种有关在自然对流条件下工作的改进的发光二极管(LED)灯散热器的数值研究。散热器的基本几何形状具有圆柱形性质,可通过切割铝挤压棒获得,该挤压棒包括圆柱形中心芯和许多均匀分布的径向散热片。中心纤芯的最小直径是固定的,要研究的参数是鳍片的数量,厚度,长度(径向尺寸)和高度。尽管没有包括在数值模拟中,但在分析中考虑了由于在LED灯背和散热器之间使用了薄的热界面材料(TIM)层而引起的热阻。散热器的主要目的是冷却LED灯,以使灯与散热器接触区域的最高温度保持在制造商指定的临界温度以下。这是与LED灯的预期寿命有关的关键方面,应以尽可能低的铝质量为代价来实现。考虑到这些标准,提出了一种设计程序,并在此之后寻求改进的散热器来冷却特定的LED灯。使用商业代码ANSYS-CFX获得的结果清楚地表明了不同控制参数对散热器性能的相对重要性,并允许在尺寸约束范围内选择更好的解决方案。尽管当前结果涉及特定的LED灯,但是所提出的方法可以扩展到用于普通照明和/或电子组件的其他类型的散热器。

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