Test stand for non-uniformity correction of microbolometer focal plane arrays used in thermal cameras

M. Krupiński, J. Barela, K. Firmanty, M. Kastek
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引用次数: 5

Abstract

Uneven response of particular detectors (pixels) to the same incident power of infrared radiation is an inherent feature of microbolometer focal plane arrays. As a result an image degradation occurs, known as Fixed Pattern Noise (FPN), which distorts the thermal representation of an observed scene and impairs the parameters of a thermal camera. In order to compensate such non-uniformity, several NUC correction methods are applied in digital data processing modules implemented in thermal cameras. Coefficients required to perform the non-uniformity correction procedure (NUC coefficients) are determined by calibrating the camera against uniform radiation sources (blackbodies). Non-uniformity correction is performed in a digital processing unit in order to remove FPN pattern in the registered thermal images. Relevant correction coefficients are calculated on the basis of recorded detector responses to several values of radiant flux emitted from reference IR radiation sources (blackbodies). The measurement of correction coefficients requires specialized setup, in which uniform, extended radiation sources with high temperature stability are one of key elements. Measurement stand for NUC correction developed in Institute of Optoelectronics, MUT, comprises two integrated extended blackbodies with the following specifications: area 200×200 mm, stabilized absolute temperature range +15 °C÷100 °C, and uniformity of temperature distribution across entire surface ±0.014 °C. Test stand, method used for the measurement of NUC coefficients and the results obtained during the measurements conducted on a prototype thermal camera will be presented in the paper.
热像仪用微热计焦平面阵列非均匀性校正试验台
特定探测器(像素点)对相同红外辐射入射功率的不均匀响应是微热计焦平面阵列的固有特征。结果,图像退化发生,称为固定模式噪声(FPN),它扭曲了观察场景的热表示并损害了热像仪的参数。为了补偿这种不均匀性,在热像仪的数字数据处理模块中应用了几种NUC校正方法。执行非均匀性校正程序所需的系数(NUC系数)是通过针对均匀辐射源(黑体)校准相机来确定的。在数字处理单元中进行非均匀性校正,以去除配准热图像中的FPN图案。根据记录的探测器对参考红外辐射源(黑体)发射的几个辐射通量值的响应,计算出相关的校正系数。校正系数的测量需要专门的设置,其中具有高温稳定性的均匀扩展辐射源是关键因素之一。MUT光电研究所开发的NUC校正测量台包括两个集成的扩展黑体,具有以下规格:面积200×200 mm,稳定的绝对温度范围+15°C÷100°C,以及整个表面温度分布均匀性±0.014°C。本文将介绍测试台架、用于测量NUC系数的方法以及在原型热像仪上进行测量时获得的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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