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设计用于大型整体镜面精确原位测试-抛光迭代的液压支撑系统。

Designing a hydraulic support system for large monolithic mirror's precise in-situ testing-polishing iteration.

作者信息

Hu Haifei, Luo Xiao, Liu Zhenyu, Zhang Xuejun, Xue Donglin, Zhao Hongwei

出版信息

Opt Express. 2019 Feb 4;27(3):3746-3760. doi: 10.1364/OE.27.003746.

Abstract

In order to improve the fabrication efficiency and testing accuracy of meter-scale, large monolithic mirrors, hydraulic support units (HSUs) are commonly used. However, the challenges to reduce the disparity of the HSUs' stiffness and keep the stability of the mirrors' altitude are hard to resolve, especially for large-scale mirrors. In this paper, we found the air ratio of the working fluid for HSUs is a key factor for designing the HSUs to resolve the challenges from the analytical solution that we derived for supporting large mirrors. Here we designed, tested and fabricated dozens of HSUs and used a four-meter SiC mirror, the world's largest monolithic SiC reported in public, as a study case. It shows that the stiffness values of grouped HSUs vary within ± 3%, and the mirror's reference surface PV is less than 20 μm in 10 days, producing a mirror tip/tilt angle less than 1.5″. The surface error of the supported mirror is about 20 nm, which is very close to the ideal case where uniform stiffness exists, for randomly distributed stiffness values. The repeatability of the in-situ interferometric test with 0.019 λ RMS of the mirror surface demonstrates the supporting system in a high precision. With such a supporting system, the fabrication process of this mirror was estimated to be sped up by 47% compared to the typical fabricating iteration. With minor modifications and easy extensions, such a novel supporting system could be used widely for many in-situ, high-quality fabricating-testing processes.

摘要

为了提高米级大型整体镜的制造效率和测试精度,通常会使用液压支撑单元(HSU)。然而,降低HSU刚度差异并保持镜子高度稳定性的挑战很难解决,尤其是对于大型镜子。在本文中,我们从为支撑大型镜子推导的解析解中发现,HSU工作流体的空气比例是设计HSU以解决这些挑战的关键因素。在此,我们设计、测试并制造了数十个HSU,并以一块四米碳化硅镜作为研究案例,该镜是公开报道的世界上最大的整体碳化硅镜。结果表明,成组HSU的刚度值在±3%范围内变化,镜子的参考面峰谷值在10天内小于20μm,产生的镜端/倾角小于1.5″。对于随机分布的刚度值,支撑镜的表面误差约为20nm,这与存在均匀刚度的理想情况非常接近。镜面原位干涉测试的重复性为0.019λRMS,证明了支撑系统具有高精度。有了这样的支撑系统,该镜子的制造过程预计比典型的制造迭代速度加快47%。通过微小的修改和易于扩展,这样一种新颖的支撑系统可广泛用于许多原位、高质量的制造测试过程。

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