DOI: 10.17586/1023-5086-2019-86-09-60-62
УДК: 53.087.92, 681.7.064.64
On-line monitoring of optical precision goniometric structures
Full text «Opticheskii Zhurnal»
Full text on elibrary.ru
Publication in Journal of Optical Technology
Кирьянов А.В., Зотов А.А., Каракоцкий А.Г., Кирьянов В.П., Петухов А.Д., Чуканов В.В. Оперативный контроль оптических прецизионных углоизмерительных структур // Оптический журнал. 2019. Т. 86. № 9. С. 60–62. http://doi.org/10.17586/1023-5086-2019-86-09-60-62
Kiriyanov A.V., Zotov A.A., Karakotskiy A.G., Kiriyanov V.P., Petukhov A.D., Chukanov V.V. On-line monitoring of optical precision goniometric structures [in Russian] // Opticheskii Zhurnal. 2019. V. 86. № 9. P. 60–62. http://doi.org/10.17586/1023-5086-2019-86-09-60-62
A. V. Kir’yanov, A. A. Zotov, A. G. Karakotskiĭ, V. P. Kir’yanov, A. D. Petukhov, and V. V. Chukanov, "On-line monitoring of optical precision goniometric structures," Journal of Optical Technology. 86(9), 579-581 (2019). https://doi.org/10.1364/JOT.86.000579
It is shown that, in industrial production, when implementing 100% input monitoring of the metrological characteristics of precision optical angle-measuring structures (dials, rasters, and multibit graduated disks), the use of the differential measurement method is promising. An example of the use of this method in an automated setup for measuring and diagnosing damage to the topology of working samples and photomasks of angle-measuring structures is provided.
goniometric structure, element topology, angular error, circular measuring and diagnostic setup
Acknowledgements:The study was funded by the subsidy for the fulfillment of the state assignment (Project IV.36.1.3, state registration No. AAAA-A17-11706061006-6) and conducted at the IAE, SB RAS.
OCIS codes: 230.4000, 230.0250, 230.0040, 120.5475
References:1. Yu. F. Abramov, D. Yu. Kruchinin, O. B. Yakovlev, V. P. Kir’yanov, A. V. Kir’yanov, S. A. Kokarev, and Yu. V. Chuguiı˘, “Modernizing the optical divider production of the Ural Optomechanical Factory on the basis of up-to-date laser-computer and photolithographic technologies,” J. Opt. Technol. 73(8), 544–547 (2006) [Opt. Zh. 73(8), 61–65 (2006)].
2. B. Ts. Yakhilevich and Yu. V. Fomkin, “Device for monitoring dial paths of goniometric instruments,” Russian patent 1689756 (1991).
3. S. I. Bakulin, “Method and apparatus for measuring angles and forming angular marks,” Russian patent 2115885 (1998).
4. A. V. Kir’yanov, V. P. Kir’yanov, I. V. Volokhov, and A. V. Bobkov, “Using a circular-scanning method to form and monitor the topology of high-precision photomasks for integrated sensors of optical quantities,” J. Opt. Technol. 83(7), 410–414 (2016) [Opt. Zh. 83(7), 26–31 (2016)].
5. V. Portman and B. Peschansky, “Phase-statistical method and device for high precision and high efficiency angular measurements,” Precis. Eng. 25(4), 309–315 (2001).
6. A. V. Kir’yanov, V. P. Kir’yanov, and V. V. Chukanov, “Using differential measurement method to monitor the accuracy of precision angle measuring structures,” Avtometriya 52(4), 45–52 (2016).