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Correcting for the effects of pupil discontinuities with the ACAD method

机译:校正瞳孔不连续性与ACAT方法的影响

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The current generation of ground-based coronagraphic instruments uses deformable mirrors to correct for phase errors and to improve contrast levels at small angular separations. Improving these techniques, several space and ground based instruments are currently developed using two deformable mirrors to correct for both phase and amplitude errors. However, as wavefront control techniques improve, more complex telescope pupil geometries (support structures, segmentation) will soon be a limiting factor for these next generation coronagraphic instruments. The technique presented in this proceeding, the Active Correction of Aperture Discontinuities method, is taking advantage of the fact that most future coronagraphic instruments will include two deformable mirrors, and is proposing to find the shapes and actuator movements to correct for the effect introduced by these complex pupil geometries. For any coronagraph previously designed for continuous apertures, this technique allow to obtain similar performance in contrast with a complex aperture (with segmented and secondary mirror support structures), with high throughput and flexibility to adapt to changing pupil geometry (e.g. in case of segment failure or maintenance of the segments). We here present the results of the parametric analysis realized on the WFIRST pupil for which we obtained high contrast levels with several deformable mirror setups (size, separation between them), coronagraphs (Vortex charge 2, vortex charge 4, APLC) and spectral bandwidths. However, because contrast levels and separation are not the only metrics to maximize the scientific return of an instrument, we also included in this study the influence of these deformable mirror shapes on the throughput of the instrument and sensitivity to pointing jitters. Finally, we present results obtained on another potential space based telescope segmented aperture. The main result of this proceeding is that we now obtain comparable performance than the coronagraphs previously designed for WFIRST. First result from the parametric analysis strongly suggest that the 2 deformable mirror set up (size and distance between them) have a important impact on the performance in contrast and throughput of the final instrument.
机译:当前一代的基于地面的日冕仪器使用可变形反射镜,以校正相位误差,并改善在小角度间隔对比度等级。改进这些技术,一些空间和地面基础的手段是使用两个变形反射镜来校正相位和幅值误差目前开发的。然而,由于波阵面控制技术的改进,更复杂的望远镜瞳孔的几何结构(支撑结构,分割)将很快成为这些下一代日冕仪器的限制因素。在这个诉讼提出的技术,光圈间断法的Active纠错,走的事实,大多数未来的日冕仪的仪器将包括两个变形反射镜的优势,并提议找形状和执行器的动作来纠正这些引入的效果复杂的瞳孔的几何形状。对于先前设计为连续的孔任何日冕,该技术允许获得在具有复杂孔对比度相似的性能(具有分段和次级镜的支撑结构),具有高吞吐量和灵活性,以适应不断变化的光瞳的几何形状(例如,在段失败的情况下或段的维护)。我们在这里提出实现了对一个我们获得高对比度水平与几个变形镜设置(大小,它们之间的分离),日冕(涡电荷2,涡流电荷4,APLC)和光谱带宽的WFIRST瞳孔参数分析的结果。然而,由于对比度和分离是不是唯一的指标,最大化仪器的科学回报,我们也包括在这项研究中,这些变形反射镜的形状对吞吐量的仪器灵敏度指向抖动的影响。最后,在另一种潜在的空间基于望远镜得到我们目前的结果分割孔。这个程序的主要结果是,我们现在获得比以前设计的WFIRST可比日冕性能。从参数分析第一个结果强烈表明,2变形镜设置(它们之间的大小和距离)对对比度的性能和吞吐量最后文书的重要影响。

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