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Experimental demonstration of laser tomographic adaptive optics on a 30-meter telescope at 800 nm

机译:在800米的30米望远镜上进行激光层析成像自适应光学的实验演示

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A critical goal in the next decade is to develop techniques that will extend Adaptive Optics correction to visible wavelengths on Extremely Large Telescopes (ELTs). We demonstrate in the laboratory the highly accurate atmospheric tomography necessary to defeat the cone effect on ELTs, an essential milestone on the path to this capability. We simulate a high-order Laser Tomographic AO System for a 30-meter telescope with the LTAO/MOAO testbed at UCSC. Eight Sodium Laser Guide Stars (LGSs) are sensed by 99x99 Shack-Hartmann wavefront sensors over 75". The AO system is diffraction-limited at a science wavelength of 800 nm (S ~ 6-9%) over a field of regard of 20" diameter. Open-loop WFS systematic error is observed to be proportional to the total input atmospheric disturbance and is nearly the dominant error budget term (81 nm RMS), exceeded only by tomographic wavefront estimation error (92 nm RMS). The total residual wavefront error for this experiment is comparable to that expected for wide-field tomographic adaptive optics systems of similar wavefront sensor order and LGS constellation geometry planned for Extremely Large Telescopes.
机译:未来十年的关键目标是开发将自适应光学校正扩展到超大型望远镜(ELT)上可见波长的技术。我们在实验室中演示了消除对ELT的锥形效应所必需的高精度大气层析成像,这是通向这种能力的必经之路。我们用UCSC的LTAO / MOAO测试台模拟了用于30米望远镜的高阶激光断层扫描AO系统。超过75英寸的99x99 Shack-Hartmann波阵面传感器可感应到八颗钠激光导星(LGS)。AO系统在800 nm(S〜6-9%)的科学波长范围内受到20个视场的衍射限制“ 直径。观察到开环WFS系统误差与总的输入大气干扰成正比,几乎是主要的误差预算项(81 nm RMS),仅被层析X射线波前估计误差(92 nm RMS)所超过。该实验的总残留波阵面误差可与计划用于超大型望远镜的类似波阵面传感器阶数和LGS星座几何形状的广域层析成像自适应光学系统的预期相媲美。

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