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Compensation for general asymmetric static loads for a complete optical system of freeform mirrors

机译:用于完整光学系统的一般不对称静态载荷的补偿

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Optical systems consisting of freeform metal mirrors are state of the art in optical engineering. The freeform shapes allow for more compact designs and offer more degrees of freedom for aberration correction. The metal components allow for the relocation of the effort from the integration to the fabrication stage. Metal mirrors for spaceborne optical systems experience several loads during orbital commissioning or operation. The present paper focuses on describing general static loads within the optical design to close the iteration loop between optical and mechanical design using this knowledge to investigate how to compensate for load-induced surface shape errors within the optical design. First, this analysis is performed for a two-mirror system with an asymmetric force load step. Second, the compensation for this load is discussed by performing another optical design step or a direct mechanical compensation step at mechanical design level. Since thermal loads usually introduce expansion effects, a third point of the paper is the discussion of thermal loads with some general results, to embed them into the shown formalism. The paper concludes by showing residual optical errors of the compensated optical system and comparing them with the nominal design. (C) 2020 Optical Society of America.
机译:由自由形式金属镜组成的光学系统是光学工程中的最先进的。自由形状允许更紧凑的设计,并为像差校正提供更多程度的自由度。金属部件允许从整合到制造阶段的努力重新定位努力。空间载波系统的金属镜经历了在轨道调试或操作期间的几个负载。本文侧重于描述光学设计内的一般静态载荷,以利用这些知识关闭光学和机械设计之间的迭代环,以研究如何补偿光学设计内的负载诱导的表面形状误差。首先,对具有不对称力负载步骤的双镜系统执行该分析。其次,通过在机械设计水平下执行另一光学设计步骤或直接机械补偿步骤来讨论该负载的补偿。由于热负荷通常引入膨胀效果,因此纸张的第三点是讨论热负荷的讨论,其中一些一般结果,将它们嵌入到所示的形式中。本文通过表示补偿光学系统的残留光学误差并将其与标称设计进行比较来结束。 (c)2020美国光学学会。

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    《Applied optics》 |2020年第6期|共12页
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