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Materials and Structural Design for Lightweight Primary Mirrors

机译:轻型主镜的材料和结构设计

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A deflection analysis for seven potential primary mirror materials is presented for loading due to gravitational or external forces. Based on this analysis a finite element model of a piano-piano mirror is developed for three mirror materials including aluminum, Zerodur and an Mg particulate-reinforced composite. Comparison of mirror deflection according to the finite element model to interferometer-measured deflections of a Zerodur mirror indicate good accuracy is obtained from the model. Using the calibrated finite model various geometrical light weighting options are evaluated. These include the fabrication of between three and six circular pockets on the back face of the mirror. It can be concluded that while both pocket depth and diameter contribute to mass reduction of the mirror, mass reduction through increases in pocket depth are more advantageous than increases in pocket diameter, as this results in greater mirror stiffness for the same mass reduction. Also, an increase in the number of light weighting pockets for the same mass reduction has less impact on the mirror optical performance.
机译:对由于重力或外力而引起的七种潜在主镜材料的挠度分析进行了介绍。基于此分析,针对三种镜面材料(包括铝,Zerodur和Mg颗粒增强复合材料)开发了钢琴-钢琴镜的有限元模型。根据有限元模型对反射镜的挠度与用干涉仪测量的Zerodur反射镜的挠度进行比较,表明从该模型可以获得良好的精度。使用校准的有限模型,可以评估各种几何轻量化选项。这些包括在镜子的背面上制造三个到六个圆形的凹穴。可以得出结论,虽然凹穴深度和直径都有助于减少镜子的质量,但通过增加凹穴深度来减少质量比增加凹穴直径更有利,因为在相同的质量减少下,这会导致更大的镜子刚度。同样,在相同质量减少的情况下增加轻量化袋的数量对反射镜光学性能的影响较小。

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