УДК: 520.2, 535.3
Investigating and designing fast three-mirror systems with no intermediate image
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Бутылкина К.Д., Бахолдин А.В., Романова Г.Э. Исследование и расчет светосильных трехзеркальных систем без промежуточного изображения // Оптический журнал. 2016. Т. 83. № 11. С. 47–50.
Butylkina K.D., Bakholdin A.V., Romanova G.E. Investigating and designing fast three-mirror systems with no intermediate image [in Russian] // Opticheskii Zhurnal. 2016. V. 83. № 11. P. 47–50.
K. D. Butylkina, A. V. Bakholdin, and G. É. Romanova, "Investigating and designing fast three-mirror systems with no intermediate image," Journal of Optical Technology. 83(11), 683-686 (2016). https://doi.org/10.1364/JOT.83.000683
This paper discusses the designs of three-mirror systems with convex second and concave third mirrors. The ranges of the initial parameters are given within which structurally acceptable solutions can be found. The shapes of the mirrors in the system are analyzed. Examples are given of the design of the layouts.
mirror systems, three-mirror objectives
Acknowledgements:The research was supported by the Ministry of Education and Science of the Russian Federation (Minobrnauka) (02.G25.31.0195).
OCIS codes: 220.1000, 350.1260, 350.6090
References:1. V. Terebizh, Modern Optical Telescopes (Fizmatlit, Moscow, 2005).
2. S. A. Denisenko, S. F. Kamus, Yu. D. Pimenov, V. I. Tergoev, and P. G. Papushev, “The AZT-33VM fast, wide-aperture telescope,” J. Opt. Technol. 76(10), 629–631 (2009) [Opt. Zh. 76(10), 48–51 (2009)].
3. W. B. Davison and P. Angel, “Large synoptic survey telescope mechanical structure and design,” Proc. SPIE 4836(4), 104–110 (2002).
4. J. P. McGuire, “A fast, wide field of view, catadioptric telescope for Whipple,” in Classical Optics, OSA Technical Digest (Optical Society of America, 2014), paper IM3A.3.
5. V. V. Sychev, “Technological aspects of the creation of large optical telescopes,” Nauka i obrazovanie, MGTU im. N.É. Baumana, Élektron. Zh. (02), 269–285 (2015).
6. Z. Gu, C. Yan, and Y. Wang, “Alignment of a three-mirror anastigmatic telescope using nodal aberration theory,” Opt. Express 23(19), 25182–25201 (2015).
7. X. Guo, L. Dong, Y. Zhao, W. Jia, L. Kong, Y. Wu, and B. Li, “Imaging and image restoration of an on-axis three-mirror Cassegrain system with wavefront coding technology,” Appl. Opt. 54(1), 2798–2805 (2015).
8. O. S. Shchavelev and L. N. Arkhipova, “Athermal optical glasses and thermally stable space-based apochromats,” J. Opt. Technol. 70(8), 576–585 (2003) [Opt. Zh. 70(8), 58–69 (2003)].
9. S. V. Gavoronski and V. A. Zverev, “Versions of a mirror-objective composite based on an optical system of Gregory and Cassegrain objectives,” J. Opt. Technol. 79(2), 84–87 (2012) [Opt. Zh. 79(2), 35–39 (2012)].
10. G. I. Tsukanova and K. D. Butylkina, “Fast three-mirror objectives having no intermediate image with convex second and concave third mirrors,” J. Opt. Technol. 3(3), 114–117 (2014) [Opt. Zh. 3(3), 3–7 (2014)].
11. V. N. Churilovski, Theory of Chromatism and Third-Order Aberrations (Mashinostroenie, Leningrad, 1968).
12. K. D. Butylkina, “Research and development of three-mirror objectives with no intermediate image,” in Annotated Collection of Scientific Research Masters’ (ITMO University, 2014), pp. 36–42.