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反射式凸球面闪耀光栅元件的超精密切割与表征

Ultra-Precision Cutting and Characterization of Reflective Convex Spherical Blazed Grating Elements.

作者信息

Li Huang, Peng Xiaoqiang, Guan Chaoliang, Hu Hao

机构信息

College of Intelligence Science, National University of Defense Technology, Changsha 410073, China.

Laboratory of Science and Technology on Integrated Logistics Support, National University of Defense Technology, Changsha 410073, China.

出版信息

Micromachines (Basel). 2022 Jul 15;13(7):1115. doi: 10.3390/mi13071115.

Abstract

In this work, based on the diffraction principle of reflective blazed grating, the structure size of the convex spherical blazed grating unit is determined, the machining accuracy of the convex spherical blazed grating is formulated, the effects of tool nose radius and Poisson burr on the diffraction efficiency of the convex spherical blazed grating are analyzed, and the performances of cutting convex gratings with microcrystalline aluminum RSA6061 and RSA6061+ chemically plated NiP for two workpiece materials are compared. A convex spherical blazed grating with a radius of curvature R = 41.104 mm, substrate diameter 14 mm, grating density 53.97 line/mm, and blaze angle of roughly 3.8° is turned by a four-axis ultra-precision machining system by adjustment of the cutting tool, workpiece material, and cutting parameters, as well as modification of the layouts of the blazed grating on the convex sphere. The results of the testing of convex spherical blazed grating elements in both layouts show that the size error of the grating period is close for both layouts, the size error of grating height is smaller in the equal-along-arc layout, the blaze angle error in the equal-along-projection layout is only 0.74%, and the average roughness of the blazed surface is less than 5 nm to meet the processing quality requirements of the reflective convex spherical blazed grating. The greater the blaze angle accuracy of the blazed grating, the higher its diffraction efficiency, so the grating element with an equal-along-projection layout has a higher diffraction efficiency than the grating element with an equal-along-arc layout. RSA6061+ chemically plated NiP material is superior to RSA6061 material in Poisson burr height and blazed surface roughness, which is more suitable for Offner-type imaging spectrometers in the spectral range 0.95-2.5 μm (SWIR).

摘要

在这项工作中,基于反射闪耀光栅的衍射原理,确定了凸球面闪耀光栅单元的结构尺寸,制定了凸球面闪耀光栅的加工精度,分析了刀尖半径和泊松毛刺对凸球面闪耀光栅衍射效率的影响,并比较了两种工件材料微晶铝RSA6061和RSA6061 +化学镀NiP切削凸光栅的性能。通过调整切削刀具、工件材料和切削参数,以及修改凸球面上闪耀光栅的布局,利用四轴超精密加工系统车削出曲率半径R = 41.104 mm、基底直径14 mm、光栅密度53.97线/mm、闪耀角约为3.8°的凸球面闪耀光栅。两种布局的凸球面闪耀光栅元件测试结果表明,两种布局的光栅周期尺寸误差相近,等弧布局的光栅高度尺寸误差较小,等投影布局的闪耀角误差仅为0.74%,闪耀面平均粗糙度小于5 nm,满足反射凸球面闪耀光栅的加工质量要求。闪耀光栅的闪耀角精度越高,其衍射效率越高,因此等投影布局的光栅元件比等弧布局的光栅元件具有更高的衍射效率。RSA6061 +化学镀NiP材料在泊松毛刺高度和闪耀面粗糙度方面优于RSA6061材料,更适用于0.95 - 2.5μm(短波红外)光谱范围内的Offner型成像光谱仪。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ead/9315822/4bdc33e9940b/micromachines-13-01115-g001.jpg

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