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Geodesic Lens: New Designs for Illumination Engineering

机译:测地线镜头:照明工程的新设计

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A novel waveguide-optical integrator is introduced for applications to LEDs. The concept is based upon a Kohler illuminator made of Luneburg lenses. Typical Kohler illuminators are formed by pairs of thin lenses, and perform badly when the paraxial approximation is rough, i.e., when the angular span of the incoming rays is wide. In contrast, the new illuminator performs ideally for angular spans up to 90° (±45°), and has only a 3% loss for a 180° angular span. In general such an illuminator cannot be made in 3D, because adjacent Luneburg lenses overlap. It can, however, be implemented in planar optics, by using Rinehart geodesic lenses. This waveguide device has application in illumination engineering as a light mixer, particularly for LEDs. Another light mixer using a combination of two kaleidoscopes with a geodesic lens is also presented. Irradiance at the exit of a kaleidoscope has good light mixing if the kaleidoscope is long enough, but the intensity is never well mixed, irrespective of the length. Inserting a Rinehart geodesic lens produces a 90-degree phase-space rotation of the rays, i.e., it exchanges irradiance and intensity. A further kaleidoscope assures complete mixing in both irradiance and intensity.
机译:引入了一种新颖的波导光学积分器,用于LED。该概念基于由Luneburg透镜制成的科勒照明器。典型的科勒照明器由成对的薄透镜形成,并且当近轴近似很粗糙时,即,当入射光线的角度跨度很宽时,性能差。相比之下,新型照明器在90°(±45°)的角度跨度下表现理想,而在180°角度跨度下损耗仅为3%。通常,由于相邻的Luneburg透镜重叠,因此不能以3D方式制作这种照明器。但是,可以通过使用Rinehart测地透镜在平面光学器件中实现。该波导器件作为照明混合器已在照明工程中得到了应用,特别是用于LED。还提出了将两个万花筒与测地透镜结合使用的另一种混光器。如果万花筒足够长,则万花筒出口处的辐照度会很好地混合在一起,但是强度永远不会很好地混合在一起,而与长度无关。插入Rinehart测地线透镜会产生90度的射线相位空间旋转,即它会交换辐照度和强度。另一个万花筒可确保辐照度和强度完全混合。

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