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Asymmetric Dual Paraboloid Reflector: Improving System Throughput by Narrowing Cone Angles

机译:非对称双抛物面反射镜:通过缩小锥角来提高系统吞吐量

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Wavien patented dual paraboloid reflector (DPR) system, while optimal in maximizing image brightness (equivalent to minimizing the image aberration) at the input of its light pipe, does not produce maximal lumen throughput at its output. The overall lumen throughput depends in large part on three factors: Fresnel losses and image aberration, both defined at the input face of the light pipe, and the light pipe's input dimensions. Fresnel losses can be reduced by narrowing the cone angles of the light cone incident on the light pipe, which in turn can be achieved by increasing the size and/or focal length of the second paraboloid reflector. Smaller cone angles also mean reduced tapering of the light pipe which translates into larger input sizes (as its output dimensions are fixed) and higher coupling efficiency. Unfortunately this gain in coupling efficiency comes at the expense of breaking the system symmetry, which destroys 1:1 imaging and leads to increased aberration and reduced brightness. Using a ray-tracing software an optimal point of operation can be reached and it is found that at least 10% increase in lumen throughput over the symmetric DPR system is achievable.
机译:Wavien获得专利的双抛物面反射器(DPR)系统在最大化其光导管输入处的图像亮度(相当于最小化图像像差)方面处于最佳状态,但在其输出端却不会产生最大的流明通过量。总的流明通量在很大程度上取决于三个因素:菲涅耳损耗和像差(均在光管的输入面定义)以及光管的输入尺寸。可以通过使入射在光导管上的光锥的锥角变窄来减小菲涅耳损耗,而这又可以通过增加第二抛物面反射器的尺寸和/或焦距来实现。较小的锥角也意味着减少了光导管的锥度,这转化为更大的输入尺寸(因为其输出尺寸固定)和更高的耦合效率。不幸的是,这种耦合效率的提高是以破坏系统对称性为代价的,它破坏了1:1的成像并导致像差增加和亮度降低。使用光线跟踪软件,可以达到最佳的工作点,并且发现与对称DPR系统相比,流明吞吐量可提高至少10%。

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