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远程荧光粉发光二极管模块的功率与光子预算

Power and photon budget of a remote phosphor LED module.

作者信息

Acuña Paula, Leyre Sven, Audenaert Jan, Meuret Youri, Deconinck Geert, Hanselaer Peter

出版信息

Opt Express. 2014 Jun 30;22 Suppl 4:A1079-92. doi: 10.1364/OE.22.0A1079.

Abstract

Light-emitting diodes (LEDs) are becoming increasingly important for general lighting applications. The remote phosphor technology, with the phosphor located at a distance from the LEDs, offers an increased extraction efficiency for phosphor converted LEDs compared to intimate phosphor LEDs where the phosphor is placed directly on the die. Additionally, the former offers new design possibilities that are not possible with the latter. In order to further improve the system efficiency of remote phosphor LEDs, realistic simulation models are required to optimize the actual performance. In this work, a complete characterization of a remote phosphor converter (RPC) consisting of a polycarbonate diffuser plate with a phosphor coating on one side via the bi-directional scattering distribution function (BSDF) is performed. Additionally, the bi-spectral BSDF which embraces the wavelength conversion resulting from the interaction of blue light with the RPC is determined. An iterative model to predict the remote phosphor module power and photon budget, including the recuperation of backward scattered light by a mixing chamber, is introduced. The input parameters for the model are the bi-spectral BSDF data for the RPC, the emission of the blue LEDs and the mixing chamber efficiency of the LED module. A good agreement between experimental and simulated results was found, demonstrating the potential of this model to analyze the system efficiency with errors smaller than 4%.

摘要

发光二极管(LED)在一般照明应用中变得越来越重要。远程荧光粉技术将荧光粉放置在远离LED的位置,与荧光粉直接放置在芯片上的紧密荧光粉LED相比,提高了荧光粉转换LED的出光效率。此外,前者提供了后者无法实现的新设计可能性。为了进一步提高远程荧光粉LED的系统效率,需要逼真的仿真模型来优化实际性能。在这项工作中,通过双向散射分布函数(BSDF)对一侧带有荧光粉涂层的聚碳酸酯扩散板组成的远程荧光粉转换器(RPC)进行了完整的表征。此外,还确定了包含蓝光与RPC相互作用产生的波长转换的双光谱BSDF。引入了一个迭代模型来预测远程荧光粉模块的功率和光子预算,包括混合腔对后向散射光的回收。该模型的输入参数是RPC的双光谱BSDF数据、蓝色LED的发射以及LED模块的混合腔效率。实验结果与模拟结果吻合良好,证明了该模型分析系统效率的潜力,误差小于4%。

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