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Numerical Simulation and Experimental Validation for the Thermal Analysis of a Compact LED Recessed Downlight with Heat Sink Design

机译:带有散热器设计的紧凑型LED嵌入式筒灯热分析的数值模拟和实验验证

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Light emitting diode (LED)-recessed downlighting is currently mainly used for indoor lighting of residential and commercial buildings. Maintaining a low junction temperature and increasing the lifetime and reliability of LED lighting is desirable. This study investigated designed heat sinks’ heat dissipation and capability of maintaining a low junction temperature, as well as increases in the lifetime and reliability of the lighting. This paper presents a designed traditional trapezoidal aluminum finned heat sink (ALFHS) and annular open cell copper foam heat sink (CUFHS) mounted to a 10 W compact LED-recessed downlight (CLRDL) and individually installed in a simulation 105 mm × 105 mm × 100 mm ( L × W × H ) test box. The purpose was to evaluate the temperature performance by testing the downlight in a small enclosed space with high ambient temperature while the LED is in operation. The downlight exhibited a long lifetime at normal use temperature and functioned according to Arrhenius’ law. Numerical simulation was performed first and followed by experimental validation. The heat sink design was the main factor in the heat management of the CLRDL. The heat sinks height was determined using numerical simulation and experimental validation before and after installation (INST) of the ALFHS and CUFHS. The CUFHS height was initially selected based on a larger heat dissipation capacity, and then by determining the ALFHS height. Both the ALFHS and CUFHS with the same height of 17 mm exhibited a similar capacity of heat dissipation before INST. Subsequent to INST, the temperature of the solder point of the ALFHS was higher than that of the CUFHS with an identical height of 17 mm. To compare the heat dissipation behavior of the two heat sinks, the ALFHS height was increased to 23 mm, which is 6 mm higher than that of the CUFHS. The results of a stationary simulation study for junction temperature coincides with the experimental results tested obtained using J-type thermocouples and a data acquisition system. The temperature of the solder point of the CLRDL with both the ALFHS and CUFHS was 91.7 °C after INST, corresponding to an LED junction temperature of 121.7 °C, which is lower than specified 135 °C LED limit temperature. The temperature distributions of specified points under natural convection were evaluated. The CLRDL installed in a small enclosed space withstood the lifetime requirements according to the results of an accelerated life test prediction. The CLRDL lumen maintenance was tested to be more than 25,000 h. The experimental results demonstrate compliance with the Energy Star ? requirements for indoor LED lighting fixtures.
机译:发光二极管(LED)嵌入式筒灯目前主要用于住宅和商业建筑的室内照明。希望保持低结温并增加LED照明的寿命和可靠性。这项研究调查了设计的散热器的散热和保持低结温的能力,以及增加了照明的寿命和可靠性。本文介绍了设计的传统梯形铝翅片散热器(ALFHS)和环形开孔铜泡沫海绵(CUFHS),它们安装在10 W紧凑型LED嵌入式筒灯(CLRDL)上,并单独安装在105 mm×105 mm× 100毫米(长×宽×高)测试箱。目的是通过在LED工作时在环境温度较高的小封闭空间中测试筒灯来评估温度性能。筒灯在正常使用温度下具有较长的使用寿命,并根据阿伦尼乌斯(Arrhenius)法则起作用。首先进行数值模拟,然后进行实验验证。散热器设计是CLRDL热管理的主要因素。使用ALFHS和CUFHS的安装(INST)前后的数值模拟和实验验证确定散热器的高度。最初根据较大的散热能力选择CUFHS高度,然后再确定ALFHS高度。在安装INST之前,高度相同的17 mm的ALFHS和CUFHS都具有相似的散热能力。在INST之后,ALFHS的焊接点温度高于同样高度为17 mm的CUFHS的焊接点温度。为了比较两个散热器的散热性能,ALFHS高度增加到23毫米,比CUFHS高6毫米。结温的静态仿真研究结果与使用J型热电偶和数据采集系统获得的测试结果相吻合。在INST之后,带有ALFHS和CUFHS的CLRDL的焊点温度为91.7°C,对应于LED结温121.7°C,低于指定的135°C LED极限温度。评估自然对流下指定点的温度分布。根据加速寿命测试预测的结果,安装在较小封闭空间中的CLRDL可以承受使用寿命要求。经测试,CLRDL流明维持时间超过25,000小时。实验结果证明符合能源之星?室内LED照明设备的要求。

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