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Uncertainty Analysis for Chromaticity Coordinates and Luminous Flux Measurements of LED Light Sources

机译:LED光源色度坐标和光通量测量的不确定度分析

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This paper introduces an uncertainty analysis model and its experimental implementation for chromaticity coordinates and luminous flux measurements of light-emitting diode (LED) sources. The uncertainty model applies the theory of the numerical method to estimate both the chromaticity coordinates and luminous flux uncertainties. The modeling process follows the steps described in GUM for determining the uncertainties. First, the mathematical functions for chromaticity coordinates and luminous flux are expressed according to both the sphere calibration and the LED measurement procedures. Based on the functions, the uncertainty contributors are identified as the input quantities of the model, and luminous flux and chromaticity coordinates are the output quantities. Second, the uncertainty contributors are categorized as random variables and systematic variables. Contributors such as spectrometer wavelength and spectral value repeatability are random variables; thus, their standard uncertainties are analyzed with statistical methods. The other contributors, such as spectrometer wavelength offsets and stray light, are systematic variables; thus, their standard uncertainties are estimated with non-statistical methods. In order to measure these contributors, several simple methods are developed for spectrometers and source measure units (SMU). Third, the sensitivity coefficients for the uncertainty contributors are calculated based on the numerical approach by calculating the output quantities with a change of the input quantities. Fourth, the uncertainties caused by each contributor are calculated using their standard uncertainties and sensitivity coefficients, and then combined. Finally, the expanded uncertainty is obtained with a coverage factor (k=2). The calculation for each step is conducted by a Matlab program.
机译:本文介绍了一种用于发光二极管(LED)光源色度坐标和光通量测量的不确定性分析模型及其实验实现。不确定度模型采用数值方法的理论来估计色度坐标和光通量不确定度。建模过程遵循GUM中描述的确定不确定性的步骤。首先,根据球体校准和LED测量程序来表达色度坐标和光通量的数学函数。基于这些函数,不确定性因素被确定为模型的输入量,光通量和色度坐标为输出量。其次,不确定性因素分为随机变量和系统变量。诸如光谱仪波长和光谱值可重复性之类的因素是随机变量。因此,用统计方法分析了它们的标准不确定度。其他因素,例如光谱仪的波长偏移和杂散光,是系统变量。因此,它们的标准不确定度是用非统计方法估算的。为了测量这些贡献者,针对光谱仪和源测量单元(SMU)开发了几种简单的方法。第三,基于数值方法,通过在输入量变化的情况下计算输出量,来计算不确定性贡献者的灵敏度系数。第四,使用标准不确定度和敏感度系数计算每个贡献者引起的不确定度,然后将其合并。最后,使用覆盖因子(k = 2)获得扩展的不确定性。每个步骤的计算都是通过Matlab程序进行的。

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