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Wide field astronomical image compensation with multiple laser-guided adaptive optics

机译:具有多种激光引导自适应光学的宽场天文图像补偿

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We report closed-loop results obtained from the first adaptive optics system to deploy multiple laser guide beacons. The system is mounted on the 6.5 m MMT telescope in Arizona, and is designed to explore advanced altitude-conjugated techniques for wide-field image compensation. Five beacons are made by Rayleigh scattering of laser beams at 532 nm integrated over a range from 20 to 29 km by dynamic refocus of the telescope optics. The return light is analyzed by a unique Shack-Hartmann sensor that places all five beacons on a single detector, with electronic shuttering to implement the beacon range gate. Wavefront correction is applied with the telescope's unique deformable secondary mirror. The system has now begun operations as a tool for astronomical science, in a mode in which the boundary-layer turbulence, close to the telescope, is compensated. Image quality of 0.2-0.3 arc sec is routinely delivered in the near infrared bands from 1.2-2.5 μm over a field of view of 2 arc min. Although it does not reach the diffraction limit, this represents a 3 to 4-fold improvement in resolution over the natural seeing, and a field of view an order of magnitude larger than conventional adaptive optics systems deliver. We present performance metrics including images of the core of the globular cluster М3 where correction is almost uniform across the full field. We describe plans underway to develop the technology further on the twin 8.4 m Large Binocular Telescope and the future 25 m Giant Magellan Telescope.
机译:我们报告从第一自适应光学系统获得的闭环结果以部署多个激光指南信标。该系统安装在亚利桑那州6.5米米MMT望远镜上,旨在探索用于广场图像补偿的高级高度共轭技术。通过望远镜光学动态重组,在532nm的激光束的瑞利散射射频散射由532纳米的瑞利散射进行了532纳米。通过独特的Shack-Hartmann传感器分析返回光,该传感器将所有五个信标放置在单个探测器上,电子快门以实现信标范围门。波前校正用望远镜独特的可变形的二手镜。该系统现在已经开始运营作为天文学的工具,在该模式中,补偿了靠近望远镜的边界层湍流的模式。图像质量为0.2-0.3弧子架在近红外条带中,在2架子分钟的视野下,在1.2-2.5μm的近红外条带中。尽管它没有达到衍射极限,但是在自然看见中,该分辨率的提高3至4倍,并且视场比传统的自适应光学系统提供大的数量级。我们呈现性能指标,包括球形集群М3的核心图像,其中校正在整个场上几乎是均匀的。我们描述了在TWIN 8.4 M大双筒望远镜和未来25米巨型Magellan望远镜上进一步开发技术的计划。

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