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Ion beam figuring approach for thermally sensitive space optics

机译:热敏空间光学器件的离子束计算方法

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During the ion beam figuring (IBF) of a space mirror, thermal radiation of the neutral filament and particle collisions will heat the mirror. The adhesive layer used to bond the metal parts and the mirror is very sensitive to temperature rise. When the temperature exceeds the designed value, the mirror surface shape will change markedly because of the thermal deformation and stress release of the adhesive layer, thereby reducing the IBF accuracy. To suppress the thermal effect, we analyzed the heat generation mechanism. By using thermal radiation theory, we established a thermal radiation model of the neutral filament. Additionally, we acquired a surface-type Gaussian heat source model of the ion beam sputtering based on the removal function and Faraday scan result. Using the finite-element-method software ABAQUS, we developed a method that can simulate the thermal effect of the IBF for the full path and all dwell times. Based on the thermal model, which was experimentally confirmed, we simulated the thermal effects for a 675 mm x 374 mm rectangular SiC space mirror. By optimizing the dwell time distribution, the peak temperature value of the adhesive layer during the figuring process was reduced under the designed value. After one round of figuring, the RMS value of the surface error changed from 0.094 to 0.015. (lambda = 632.8 nm), which proved the effectiveness of the thermal analysis and suppression method. (C) 2016 Optical Society of America
机译:在空间反射镜的离子束计算(IBF)期间,中性灯丝的热辐射和粒子碰撞将加热反射镜。用于粘合金属零件和镜子的粘合剂层对温度升高非常敏感。当温度超过设计值时,由于粘合剂层的热变形和应力释放,镜面形状将发生显着变化,从而降低了IBF精度。为了抑制热效应,我们分析了发热机理。利用热辐射理论,建立了中性丝的热辐射模型。另外,我们基于去除函数和法拉第扫描结果获得了离子束溅射的表面型高斯热源模型。使用有限元方法软件ABAQUS,我们开发了一种可以模拟IBF在整个路径和所有停留时间上的热效应的方法。根据实验验证的热模型,我们模拟了675 mm x 374 mm矩形SiC空间镜的热效应。通过优化停留时间分布,将塑形过程中胶粘剂层的峰值温度降低到设计值以下。经过一轮计算,表面误差的RMS值从0.094变为0.015。 (λ= 632.8nm),证明了热分析和抑制方法的有效性。 (C)2016美国眼镜学会

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