[1] Shappee B J, Simon J D, Drout M R, et al. Early spectra of the gravitational wave source GW170817: Evolution of a neutron star merger [J]. Science, 2017, 358(6370): eaaq0186.
[2] Belczynski K, Holz D E, Bulik T, et al. The first gravitational-wave source from the isolated evolution of two stars in the 40–100 solar mass range [J]. Nature, 2016, 534(7608): 512−515. doi:  10.1038/nature18322
[3] Danzmann Karsten. LISA and its pathfinder [J]. Nature Physics, 2015, 11(8): 613−615. doi:  10.1038/nphys3420
[4] 罗子人,白姗,边星, 等. 空间激光干涉引力波探测[J]. 力学进展, 2013, 43(4): 415−447. doi:  10.6052/1000-0992-13-044

Luo Ziren, Bai Shan, Bian Xing, et al. Space laser interferometry gravitational wave detection [J]. Advances in Mechanics, 2013, 43(4): 415−447. (in Chinese) doi:  10.6052/1000-0992-13-044
[5] 王智,沙巍,陈哲,等. 空间引力波探测望远镜初步设计与分析[J]. 中国光学, 2018, 11(1): 131−151. doi:  10.3788/co.20181101.0131

Wang Zhi, Sha Wei, Chen Zhe, et al. Preliminary design and analysis of telescope for space gravitational wave detection [J]. Chinese Optics, 2018, 11(1): 131−151. (in Chinese) doi:  10.3788/co.20181101.0131
[6] Yoder P, Vukobratovich D. Opto-mechanical systems design, Two Volume [M]. 4th ed. Dekker, 2015.
[7] Kihm H, Yang H S, Rhee H G, et al. Development of 1-m primary mirror for a spaceborne camera[C]// Optomechanical Engineering 2015. International Society for Optics and Photonics, 2015.
[8] Kihm H, Yang H S. Design optimization of a 1-m lightweight mirror for a space telescope [J]. Optical Engineering, 2013, 52(9): 091806. doi:  10.1117/1.OE.52.9.091806
[9] 张媛媛, 敬畏, 程云涛,等. Φ510 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. doi:  10.3788/OPE.20122008.1718

Zhang Yuanyuan, Jing Wei, Cheng Yuntao, et al. Design and finite element analysis of Φ510 mm SiC ultra-lightweight mirror [J]. Opt Precision Engineering, 2012, 20(8): 1718−1724. (in Chinese) doi:  10.3788/OPE.20122008.1718
[10] 闫勇, 金光, 杨洪波. 空间反射镜结构轻量化设计[J]. 红外与激光工程, 2008, 37(1): 97−101. doi:  10.3969/j.issn.1007-2276.2008.01.023

Yan Yong, Jin Guang, Yang Hongbo. Lightweight structural design of space mirror [J]. Infrared and Laser Engineering, 2008, 37(1): 97−101. (in Chinese) doi:  10.3969/j.issn.1007-2276.2008.01.023
[11] 王克军, 宣明, 董吉洪, 等. 空间遥感器反射镜组件结构设计方法[J]. 红外与激光工程, 2016, 45(11): 311−321.

Wang Kejun, Xuan Ming, Dong Jihong, et al. Design method of reflector component structure of space remote sensor [J]. Infrared and Laser Engineering, 2016, 45(11): 311−321. (in Chinese)
[12] 邵梦旗, 张雷, 李林, 等. 超轻空间相机主支撑背板的优化设计[J]. 光学学报, 2019, 39(3): 0322001. doi:  10.3788/AOS201939.0322001

Shao Mengqi, Zhang Lei, Li Lin, et al. Optimization design design of supporting backplate for ultra-light space camera [J]. Acta Optica Sinica, 2019, 39(3): 0322001. (in Chinese) doi:  10.3788/AOS201939.0322001
[13] Weingrod I, Chou C Y, Holmes B, et al. Design of bipod flexure mounts for the IRISSpectrometer[C]// SPIE, 2013, 8836: 88360Q-1.
[14] Chu C, Li Y, Chai W, et al. Design of bipod flexures for space mirror[C]// International Symposium on Photoelectronic Detection & Imaging: Space Exploration Technologies & Applications. International Society for Optics and Photonics, 2011.
[15] Selig J M, Ding X. A screw theory of static beams[C]// Intelligent Robots and Systems. Proceedings. 2001 IEEE/RSJ International Conference on IEEE, 2001.
[16] Selig J M, Ding X. A screw theory of timoshenko beams [J]. Journal of Applied Mechanics, 2009, 76(3): 31−033.
[17] 张丽敏,王富国, 安其昌,等. Bipod柔性结构在小型反射镜支撑中的应用[J]. 光学 精密工程, 2015, 23(2): 438−443. doi:  10.3788/OPE.20152302.0438

Zhang Limin, Wang Fuguo, An Qichang, et al. Application of Bipod supporting structure of minitype reflector [J]. Opt Precision Eng, 2015, 23(2): 438−443. (in Chinese) doi:  10.3788/OPE.20152302.0438
[18] Livas J, Stebbins R, Arsenovic P, et al. Preliminary LISA telescope spacer design[C]// Cospar Scientific Assembly, 2010.
[19] ESA. Final technical report of the (phase A) study of the laser interferometer space antenna[R]. Report No. LI-RP-DS-009, 2000.