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首页> 外文期刊>Sensors and Actuators, A. Physical >Design and development of a 331-segment tip-tilt-piston mirror array for space-based adaptive optics
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Design and development of a 331-segment tip-tilt-piston mirror array for space-based adaptive optics

机译:用于天基自适应光学系统的331段尖端倾斜活塞镜阵列的设计与开发

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We report on the development of a micromachined silicon deformable mirror (DM) system for the hyper-contrast visible nulling coronagraph architecture designed by the Jet Propulsion Laboratory for NASN's Terrestrial Planet Finding (TPF) mission. The new DM is designed to achieve unprecedented optical quality and mechanical positioning precision as required by the nulling coronagraph. It consists of 331 close-packed hexagonal segments on a 600 mu m pitch. Each segment has three adjustable degrees of freedom controlling out-of-plane rotation (in two axes) and surface normal motion over a continuous range of +/- 3 mrad and 1 mu m, respectively. The coronagraph implementation specifies that each segment maintains an overall flatness better than 10 nm RMS, irrespective of segment angle. To achieve this objective, two design concepts were developed in parallel. The first design uses thick mirror segments consisting of epitaxial grown polysilicon (epipoly) to provide the mirror with high rigidity, allowing it to tilt without bending. The epipoly layer can also be highly polished to better than 1nm RMS local surface roughness. The second design uses thinner, more compliant mirror segments, but supports them with flexure-based electrostatic actuators that decouple tilt motion from mirror segment bending moments. The thinner mirror segment has reduced optical quality due to print-through effects, but offers greater ease in post-processing mirror curvature caused by residual stress gradients. DM segments fabricated with the flexure design experience a maximum mirror bend of 2.8 nut RMS at 4.3 mrad of tilt. Both DM designs and associated microfabrication processes are presented. Optical and electromechanical characterization results are also presented. (c) 2007 Elsevier B.V. All rights reserved.
机译:我们报告了由喷气推进实验室为NASN的地球行星发现(TPF)任务设计的超对比度可见归零日冕仪结构的微加工硅可变形镜(DM)系统的开发情况。新型DM旨在实现归零日冕仪所要求的前所未有的光学质量和机械定位精度。它由331个密排六边形节段组成,节距为600微米。每个段具有三个可调节的自由度,分别控制平面外旋转(在两个轴上)和表面法向运动,分别在+/- 3 mrad和1μm的连续范围内。冠冕仪的实现方式规定,无论段角如何,每个段均保持优于10 nm RMS的总体平坦度。为了实现此目标,并行开发了两个设计概念。第一种设计使用由外延生长的多晶硅(epipoly)组成的厚镜部分,以提供具有高刚度的镜,使其倾斜而不会弯曲。还可以对Epipoly层进行高度抛光,使其局部表面粗糙度优于1nm RMS。第二种设计使用更薄,更顺应的镜段,但通过基于挠曲的静电致动器为它们提供支撑,该致动器将倾斜运动与镜段弯矩分离开。较薄的镜面段由于透印效应而降低了光学质量,但是在处理后镜面曲率时,由于残留应力梯度而导致的更加容易。使用挠性设计制造的DM扇形板在4.3 mrad的倾斜度下最大镜面弯曲为2.8螺母RMS。同时介绍了DM设计和相关的微细加工工艺。还介绍了光学和机电表征结果。 (c)2007 Elsevier B.V.保留所有权利。

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