Volume 42 Issue 10
Feb.  2014
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Sun Jingwei, Wu Xiaoxia, Li Jianfeng, Lv Tianyu, Liu Jie. Design and analysis of 4m SiC primary mirror handing device structure[J]. Infrared and Laser Engineering, 2013, 42(10): 2753-2759.
Citation: Sun Jingwei, Wu Xiaoxia, Li Jianfeng, Lv Tianyu, Liu Jie. Design and analysis of 4m SiC primary mirror handing device structure[J]. Infrared and Laser Engineering, 2013, 42(10): 2753-2759.

Design and analysis of 4m SiC primary mirror handing device structure

  • Received Date: 2013-02-01
  • Rev Recd Date: 2013-03-10
  • Publish Date: 2013-10-25
  • The primary mirror handing device with 12 axial supporting bars was designed in this paper, according to the structure and material characteristic of 4m SiC primary mirror. Firstly, it was determined that the handing device consisted of main body frame, axial supports, radial supports and upper compaction. Secondly, with method of finite element model building, analysis and optimization, the design of main body frame, the optimization of application area of force and projected dimension were studied. Thirdly, the mirror deformation plot and stress state and the primary mirror supported by 3 points and tilted caused by the installation error were analyzed. Finally, the final project of handing device was determined, and it was machined, assembled and applied according to the results of the analysis and optimization. The analysis result and practical application indicate that the design requirement of the handing device is achieved, and the direction for similar structure is provided here.
  • [1]
    [2] Cheng Jingquan. Principles of Astronomical Telescope Design[M]. Beijing: China Science Technology Press, 2003: 61-68. (in Chinese) 程景全. 天文望远镜原理和设计[M]. 北京: 中国科学技术 出版社, 2003: 61-68.
    [3] Yoder J R, Paul R. Opto-Mechanical Systems Design [M]. New York: Marcel Dekker Inc, 1993: 407-470.
    [4]
    [5] Bely Pierre Y. The Design and Construction of Large Optical Telescopes [M]. New York: Springer-Verlag Inc, 2003: 219-223.
    [6]
    [7] Wang Huai, Dai Shuang, Zhang Jingxu. Azimuth shafting bearing sturcture in a large Alt-azimuth telescope [J] . Opt Precision Engineering, 2012, 20(7): 1509-1516. (in Chinese) 王槐, 代霜, 张景旭. 大型地平式望远镜的方位轴系支撑 结构[J]. 光学精密工程, 2012, 20(7): 1509-1516.
    [8]
    [9] Xu Liang, Zhao Jianke, Xue Xun. Detectability of lunar-based optical telescope on ground [J]. Opt Precision Engineering, 2012, 20(5): 972-978. (in Chinese) 徐亮, 赵建科, 薛勋. 月基望远镜探测能力得地面标定[J]. 光学精密工程, 2012, 20(5): 972-978.
    [10]
    [11] Zhang Dongge, Zhou Renshan, Li Yaobin. Surrogate models based optimization methods for the axial support points of the primary mirror [J]. Infrared and Laser Engineering, 2012, 31(1): 409-414. (in Chinese) 张东阁, 卓仁善, 李耀彬. 反射镜轴向支撑位置优化得代 理模型方法[J]. 红外与激光工程, 2012, 41(2): 409-414.
    [12]
    [13] Fan Lili, Zhang Jingxu, Yang Fei, et al. Impact of the supports of primary mirror in equatorial telescope on its surface deformation [J]. Infrared and Laser Engineering, 2012, 41(1): 173-177. (in Chinese) 范李立, 张景旭, 杨飞, 等. 极轴式望远镜主镜职称结构对 镜面变形影响[J]. 红外与激光工程, 2012, 41(1): 173-177.
    [14]
    [15] Sun Jingwei. Alignment technique for the large-aperture telescope based on astigmatism [J]. Infrared and Laser Engineering, 2012, 41(2): 427-435. (in Chinese) 孙敬伟. 利用像散分析实现得大口径望远镜装调技术[J]. 红外与激光工程, 2012, 41(2): 427-435.
    [16]
    [17] Zhang Yuanyuan, Jing Wei, Cheng Yuntao, et al. Design and finite element analysis of 510 mm SiC ultra-lightweight mirror [J] . Opt Precision Engineering, 2012, 20(8): 1718-1724. (in Chinese) 张媛媛, 敬畏, 程云涛, 等. 510 mm SiC 超轻量化反射镜 的设计与有限元分析[J]. 光学精密工程, 2012, 20(8): 1718-1724.
    [18]
    [19] Wu Xiaoxia, Wang Minghao, Ming Ming, et al. Calibration of thermal distortion for large aperture SiC lightweight mirror[J]. Opt Precision Engineering, 2012, 20 (6): 1243-1249. (in Chinese) 吴小霞, 王鸣浩, 明名, 等. 大口径SiC 轻量化主镜热变形 得定标[J]. 光学精密工程, 2012, 20(6): 1243-1249.
    [20]
    [21]
    [22] Zhang Limin, Zhang Bin, Yang Fei, et al. Design and test of force actuator in active optical system [J]. Opt Precision Engineering, 2012, 20(1): 38-44. (in Chinese) 张丽敏, 张斌, 杨飞, 等. 主动光学系统力促动器得设计和 测试[J]. 光学精密工程, 2012, 20(1): 38-44.
    [23]
    [24] Gao Jinsong, Shen Zhenfeng, Wang Xiaoyi, et al. Research status quo of SiC space mirror material and its surface modification [J]. Chinese Journal of Optics and Applied Optics, 2009, 2(2): 71-78. (in Chinese) 高劲松, 申振峰, 王笑夷, 等. SiC空间反射镜材料及其表面改 性技术现状分析[J]. 中国光学与应用光学, 2009, 2(2): 71-78.
    [25]
    [26] Palusinski I A, Ghozeil I. Developing SiC for optical system application[C]//SPIE, 2004, 5524: 14-20.
    [27] Tang Yuxia, Zhang Ge. The development of fabrication techniques in large scale light-weighted SiC mirror blank[J]. Opt Tech, 2007, 33(4): 510-518. (in Chinese) 唐裕霞, 张舸. 大口径碳化硅轻质反射镜镜坯制造技术的 研究进展[J]. 光学技术, 2007, 33(4): 510-518.
    [28]
    [29] Rodolfo J. Polishing, coating and integration of SiC mirror for space telescopes[C]//SPIE, 1995, 2543: 238-247.
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Design and analysis of 4m SiC primary mirror handing device structure

  • 1. Changchun Institute of Optics,Fine Mechanics and Physics,Chinese Academy of Sciences,Changchun 130033,China

Abstract: The primary mirror handing device with 12 axial supporting bars was designed in this paper, according to the structure and material characteristic of 4m SiC primary mirror. Firstly, it was determined that the handing device consisted of main body frame, axial supports, radial supports and upper compaction. Secondly, with method of finite element model building, analysis and optimization, the design of main body frame, the optimization of application area of force and projected dimension were studied. Thirdly, the mirror deformation plot and stress state and the primary mirror supported by 3 points and tilted caused by the installation error were analyzed. Finally, the final project of handing device was determined, and it was machined, assembled and applied according to the results of the analysis and optimization. The analysis result and practical application indicate that the design requirement of the handing device is achieved, and the direction for similar structure is provided here.

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