论文标题

GMAGAO-X的概念设计:与GMT的可见波长高对比度成像

The conceptual design of GMagAO-X: visible wavelength high contrast imaging with GMT

论文作者

Males, Jared R., Close, Laird M., Haffert, Sebastiaan Y., Guyon, Olivier, Gasho, Victor, Coronado, Fernando, Durney, Olivier, Hedglen, Alexander, Kautz, Maggie, Noenickx, Jamison, Ford, John, Connors, Tom, Kelly, Doug

论文摘要

我们介绍了Gmagao-X的概念设计,Gmagao-X是25 m巨型麦哲伦望远镜(GMT)的极端自适应光学系统。我们正在开发GMAGAO-X在GMT的第一光之后或在不久后提供,以使早期的高对比度系外行星科学能够响应Astro2020的建议。一个关键的科学目标是描述附近潜在可居住的陆地世界。 gmagao-xis是一个具有集成段相位控制的Woofer-Tweeter系统。该高音扬声器是21,000个执行器分段的可变形镜,由七个3000个执行器段组成。多阶段的波前传感系统可为引导,相集和高阶感测。整个仪器都安装在旋转器中以提供重力不变性。在主要的AO系统之后,可见(g至y)和近IR(y至H)科学通道包含集成的冠状波前控制系统。然后,完全校正的冠状梁和冠状梁将被送入包括成像器和光谱仪在内的焦平面仪器套件。这将包括通过纤维饲料在GMT的现有设施仪器。为了评估设计,我们开发了一个端到端频域建模框架,用于评估Gmagao-X的性能。然后对许多闭环反馈控制系统的动力学进行建模。最后,我们采用频域的后处理算法模型来分析最终的后加工灵敏度。 GMAGAO-X的CODR于2021年9月举行。在这里,我们概述了GMAGAO-X的科学案例,仪器设计,预期性能和操作概念。

We present the conceptual design of GMagAO-X, an extreme adaptive optics system for the 25 m Giant Magellan Telescope (GMT). We are developing GMagAO-X to be available at or shortly after first-light of the GMT, to enable early high contrast exoplanet science in response to the Astro2020 recommendations. A key science goal is the characterization of nearby potentially habitable terrestrial worlds. GMagAO-Xis a woofer-tweeter system, with integrated segment phasing control. The tweeter is a 21,000 actuator segmented deformable mirror, composed of seven 3000 actuator segments. A multi-stage wavefront sensing system provides for bootstrapping, phasing, and high order sensing. The entire instrument is mounted in a rotator to provide gravity invariance. After the main AO system, visible (g to y) and near-IR (Y to H) science channels contain integrated coronagraphic wavefront control systems. The fully corrected and, optionally, coronagraphically filtered beams will then be fed to a suite of focal plane instrumentation including imagers and spectrographs. This will include existing facility instruments at GMT via fiber feeds. To assess the design we have developed an end-to-end frequency-domain modeling framework for assessing the performance of GMagAO-X. The dynamics of the many closed-loop feedback control systems are then modeled. Finally, we employ a frequency-domain model of post-processing algorithms to analyze the final post-processed sensitivity. The CoDR for GMagAO-X was held in September, 2021. Here we present an overview of the science cases, instrument design, expected performance, and concept of operations for GMagAO-X.

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