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Integrated finite element analysis and raytracing, oriented tostructural optimization, for astronomical instrument design

机译:用于天文仪器设计的集成有限元分析和光束定位优化

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The design of astronomical instrument is growing in dimension and complexity, following the new requirements imposed by ELT class telescopes. The availability of new structural material like composite ones is asking for more robust and reliable designing numerical tools. This paper wants to show a possible integrated design framework. The procedure starts from the developing of a raw structure consisting in an assembly of plates and beams directly from the optical design. The basic Finite Element Model is then prepared joining together plate and beam elements for the structure and mass and semi-rigid element for the the opto-mechanical subsystems. The technique developed is based onto Matlab commands and run the FEA, extrapolate the optical displacements, implement them into the optical design and evaluates the image quality in terms of displacement and spot size. Thanks to a simplified procedure the routine is able to derive the full field of displacements from a reduced sequence of three different load sets. The automatic optimization routine modifies the properties of plates and beams considering also different materials and, in case of composites different lamination sequences. The algorithm is oriented to find the best compromise in terms of overall weights w.r.t. eigen-frequencies, image stability and quality.
机译:在Elt Class Telescopes施加的新要求之后,天文仪器的设计越来越多。新的结构材料如复合材料等的可用性要求更强大,可靠的设计数值工具。本文旨在展示可能的集成设计框架。该过程从源结构的显影开始,该结构由板的组装和直接来自光学设计的梁组成。然后将基本有限元模型加入连接板和梁元件,用于光学系统的结构和质量和半刚性元件。开发的技术基于MATLAB命令并运行FEA,推断光学位移,将它们实施到光学设计中,并在位移和点尺寸方面评估图像质量。由于简化的过程,程序能够从三种不同负载集的减少序列中获得完整的位移领域。自动优化程序根据复合材料的不同层压序列修改了不同材料的板和光束的性质。该算法定向为在整体重量W.r.t方面找到最佳妥协。特征频率,图像稳定性和质量。

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