中功率LED的结构功能分析及热紧凑模型开发

A. Alexeev, G. Martin, V. Hildenbrand
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引用次数: 11

摘要

在现代的磷光转换白光led中,电学、光学和热性能交织在一起。它为热测量、分析和热紧凑模型开发带来了挑战。例如,一方面,包裹在圆顶材料中的荧光粉颗粒在蓝光到白光的转换过程中产生大量的热量,另一方面,增加了圆顶的导热性。这些现象限制了单一热流路径和单一热源紧凑模型的适用性。本文针对特定中功率LED的不同配置,对两种紧凑型进行了比较。将验证的完整有限元模型的热瞬态分析结果与紧凑模型进行比较。研究了热量在LED穹顶内传播的附加热流路径的影响。指出了热瞬态测量结果的标准一维热流路径解释的缺陷和适用范围。给出了一种基于测量的紧凑模型生成方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure function analysis and thermal compact model development of a mid-power LED
In modern phosphor-converted white LEDs, electrical, optical, and thermal performances are inter-twined. It creates challenges for thermal measurements, analysis and thermal compact model development. For example, on one hand, phosphor particles encapsulated in the dome material generate significant amount of heat during blue to white light conversion, and on the other hand, increase dome thermal conductivity. These phenomena limit applicability of single heat flow path and single heat source compact models. The paper presents a comparison of two compact model types for different configurations of a particular mid-power LED. The comparison was done by relating the results of thermal transient analysis of a verified full FEM model with the compact models. The effect of an additional heat flow path corresponding to heat propagation into the LED dome was investigated. Drawbacks and applicability limits of the standard one-dimensional heat flow path interpretation of thermal transient measurements results were shown. A measurement based compact model generation procedure is demonstrated.
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