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Calibration and testing of the 6.5 m MMT adaptive optics system.

机译:6.5 m MMT自适应光学系统的校准和测试。

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摘要

This dissertation describes the development, calibration, and testing of the adaptive optics system for the 6.5 m Multiple Mirror Telescope. By employing a deformable secondary mirror, the MMT adaptive optics system uniquely solves several problems typical of astronomical adaptive optics systems. Extra components are eliminated, improving throughput and reducing emissivity. Since the adaptive secondary is integral to the telescope, a corrected beam is presented to any instrument mounted at Cassegrain focus.; The testing of an adaptive mirror, which is large and convex, poses a new and difficult problem. I present a test apparatus that allows complete calibration and operation, in closed-loop, of the entire adaptive optics system in the laboratory. The test apparatus replicates the optical path of the telescope with a wavefront error of less than 500 nm RMS. To simulate atmospheric turbulence, machined acrylic plates are included. A phase-shifting interferometer allows calibration of the Shack-Hartmann wavefront sensor and reconstruction algorithms; comparisons agree to one-third of the root-mean-square wavefront. First, techniques were developed to align the apparatus and measure residual aberration. Then, the wavefront sensor was calibrated by measuring its response to introduced tilt. Lastly, a Fourier wave-optics approach was used to produce a modal wavefront reconstructor.; The adaptive secondary mirror uses electro-magnetic force actuators. Capacitive position sensors are placed at each actuator to permit control of the mirror shape without measuring the reflected wavefront. These sensors have nanometer resolution, but require calibration. To calibrate the sensors, I developed a small optical instrument which measures the thickness of transparent films to an absolute accuracy of 5 nm with a precision of 2 nm. The device has applications far beyond the scope of this research. Twenty-four of these optical gap sensors have been built to calibrate the 336 capacitive sensors on the adaptive secondary mirror. Mirror displacements measured using gap sensors and a phase-shifting interferometer agree to 2 percent of the displacement. The gap sensors allow for quick and accurate calibration of the capacitive sensors without the difficulty of installing an interferometer on the telescope.
机译:本文介绍了6.5 m多镜望远镜的自适应光学系统的开发,校准和测试。通过采用可变形的辅助反射镜,MMT自适应光学系统可以独特地解决天文自适应光学系统的若干问题。消除了额外的组件,从而提高了吞吐量并降低了发射率。由于自适应辅助系统是望远镜不可或缺的,因此校正后的光束会呈现给安装在Cassegrain焦点处的任何仪器。大而凸的自适应镜的测试提出了一个新的难题。我介绍了一种测试设备,它可以在实验室中对整个自适应光学系统进行闭环完整校准和操作。该测试设备以小于500 nm RMS 的波前误差复制了望远镜的光路。为了模拟大气湍流,包括了机加工的丙烯酸板。相移干涉仪可以校准Shack-Hartmann波前传感器和重建算法。比较结果表明均方根波阵面的三分之一。首先,开发了对准设备并测量残留像差的技术。然后,通过测量波前传感器对引入的倾斜的响应来进行校准。最后,使用傅立叶波光学方法产生模态波前重建器。自适应辅助镜使用电磁力执行器。电容式位置传感器放置在每个执行器上,以允许在不测量反射波前的情况下控制镜面形状。这些传感器具有纳米分辨率,但需要校准。为了校准传感器,我开发了一种小型光学仪器,可以测量透明膜的厚度,其绝对精度为5 nm,精度为2 nm。该设备的应用远远超出了本研究的范围。这些光学间隙传感器中的二十四个已建立,用于校准自适应辅助反射镜上的336个电容式传感器。使用间隙传感器和相移干涉仪测得的镜面位移为位移的2%。间隙传感器可以快速准确地校准电容式传感器,而无需在望远镜上安装干涉仪。

著录项

  • 作者

    Johnson, Robert Lee.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Physics Optics.; Physics Astronomy and Astrophysics.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 210 p.
  • 总页数 210
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;天文学;
  • 关键词

  • 入库时间 2022-08-17 11:46:50

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