Topology optimization-based lightweight primary mirror design of a large-aperture space telescope.

For the large-aperture space telescope, the lightweight primary mirror design with a high-quality optical surface is a critical and challenging issue. This work presents a topology optimization-based design procedure for a lightweight primary mirror and a new mirror configuration of a large-aperture space telescope is obtained through the presented design procedure. Inspired by the topology optimization method considering cast constraints, an optimization model for the configuration design of the mirror back is proposed, through which the distribution and the heights of the stiffeners on the mirror back can be optimized simultaneously. For the purpose of minimizing the optical surface deviation due to self-weight and polishing pressure loadings, the objective function is selected as to maximize the mirror structural stiffness, which can be achieved by minimizing the structural compliance. The total mass of the primary mirror is assigned as the constraint. In the application example, results of the optimized design topology for two kinds of mass constraints are presented. Executing the design procedure for specific requirements and postprocessing the topology obtained of the structure, a new mirror configuration with tree-like stiffeners and a multiple-arch back in double directions is proposed. A verification model is constructed to evaluate the design results and the finite element method is used to calculate the displacement of the mirror surface. Then the RMS deviation can be obtained after fitting the deformed surface by Zernike polynomials. The proposed mirror is compared with two classical mirrors in the optical performance, and the comparison results demonstrate the superiority of the new mirror configuration.

[1]  On the self-weight sag of arch-like structures in the context of light-weight mirror design , 1975 .

[2]  Daniel Vukobratovich,et al.  Optimum Shapes For Lightweighted Mirrors , 1982, Astronomical Telescopes and Instrumentation.

[3]  Terry S. Mast,et al.  Telescope Mirror Supports: Plate Deflections On Point Supports , 1982, Astronomical Telescopes and Instrumentation.

[4]  K. Svanberg The method of moving asymptotes—a new method for structural optimization , 1987 .

[5]  R E Parks,et al.  Mirror deflection on multiple axial supports. , 1989, Applied optics.

[6]  Daniel Vukobratovich,et al.  A Comparison Of The Merits Of Open-Back, Symmetric Sandwich, And Contoured Back Mirrors As Light-Weighted Optics. , 1989, Optics & Photonics.

[7]  Edward A. Hileman,et al.  Comparison of performance of lightweight mirrors , 1990, Optics & Photonics.

[8]  V. Mahajan Zernike circle polynomials and optical aberrations of systems with circular pupils. , 1994, Applied optics.

[9]  Victor L. Genberg Optical performance criteria in optimum structural design , 1999, Optics + Photonics.

[10]  Sung-Kie Youn,et al.  Topology optimization of the primary mirror of a multi-spectral camera , 2003 .

[11]  Lothar Harzheim,et al.  A review of optimization of cast parts using topology optimization , 2005 .

[12]  P. Duysinx,et al.  Note on topology optimization of continuum structures including self-weight , 2005 .

[13]  Sung-Kie Youn,et al.  Lightweight mirror design method using topology optimization , 2005 .

[14]  Zhang Zhong-yu Space telecope aspherical mirror structure design based on SiC material , 2007 .

[15]  Guang-ming Dai,et al.  Orthonormal polynomials in wavefront analysis: error analysis. , 2008 .

[16]  Virendra N Mahajan,et al.  Orthonormal polynomials in wavefront analysis: error analysis. , 2006, Applied optics.

[17]  I. M. Sokolov,et al.  Questions of constructing lightened primary mirrors of space telescopes , 2009 .

[18]  Casper Schousboe Andreasen,et al.  An explicit parameterization for casting constraints in gradient driven topology optimization , 2011 .

[19]  Joseph M. Howard,et al.  Space telescope design considerations , 2012 .

[20]  Ho-Soon Yang,et al.  1-m lightweight mirror design using genetic algorithm , 2012, Other Conferences.