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Optical design of athermal, multispectral, radial gradient-index lenses

机译:非热,多光谱,径向渐变折射率镜片的光学设计

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摘要

Many infrared systems operate in extreme environments (such as space or military), which require stable optical performance over an extended temperature range. We present a model for the first-order optical design of athermal, radial gradient-index (GRIN) systems, based on a form of the thermo-optic glass coefficient adapted to inhomogeneous material combinations. We find that radial GRIN components can significantly reduce the optical power balance of athermal, achromatic systems, thus reducing aberration contributions from individual lens elements and improving overall performance. This introduces the scope for a class of GRIN multispectral infrared imaging solutions. We apply this enhanced first-order modeling technique to generate starting points for optimization of a short wave to long wave infrared (SWIR/LWIR) multispectral optical design. An example of SWIR/LWIR optical design for a weapon sight application is generated and shown to have significantly reduced mass and improved performance compared with a conventional non-GRIN solution.
机译:许多红外系统在极端环境(例如太空或军事环境)中运行,这要求在扩展的温度范围内保持稳定的光学性能。我们基于适合非均质材料组合的热光玻璃系数的形式,提出了一种用于非热径向梯度指数(GRIN)系统的一阶光学设计的模型。我们发现,径向GRIN组件可以显着降低消热消色差系统的光焦度平衡,从而减少单个透镜元件的像差贡献并改善整体性能。这介绍了一类GRIN多光谱红外成像解决方案的范围。我们应用这种增强的一阶建模技术来生成起点,以优化短波到长波红外(SWIR / LWIR)多光谱光学设计。生成了用于武器瞄准具的SWIR / LWIR光学设计示例,并显示出与传统的非GRIN解决方案相比,其质量显着降低,性能提高。

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