5e1862c7a04ab.pdf
DOI:
Mavjud emas
1. Urakseev MA, Vazhdaev K.V. Acoustooptic converters: theoretical background and new developments // Sensors and systems. - 2000. - No. 1. - P. 35-37. 2. Vazhdaev K.V. Acoustooptic converters of linear movements (modeling and research of main CHEMICAL TECHNOLOGY. CONTROL AND MANAGEMENT. Special issue №4-5 / 2018 49 characteristics): the author's abstract. dis. Cand. tech. sciences. - Ufa, 2003. - 15 p. 3. Freyden J. Modern sensors. Directory. - Moscow: Technosphere, 2006. - 592 p. 4. Worden K. New intelligent materials and designs. Properties and application. - Moscow: Technosphere, 2006. - 224 p. 5. Fiber-optic sensors. Introductory course for engineers and researchers / Ed. E.Udda. - Moscow: Technosphere, 2004. - 416 p. 6. Jackson R.G. The newest sensors. - Moscow: Techno sphere, 2007. - 284 p. 7. Gonda S. Optoelectronics in questions and answers / S. Gonda, D. Seko. - Leningrad: Energoatomizdat. Leningrad branch, 1989. - 184 p. 8. Okosi T. Fiber-optic sensors / T. Okosi, K. Okamoto. - Leningrad: Energoatomizdat. Lenin-grad branch, 1990. - 256 p. 9. Urakseev M.A. Information-measuring systems and waveguides with acousto-optic effect / M.A. Urakseev, K.V. Vazhdaev // Eighteen World Conference on Intelligent Systems for Industrial Automation WCIS2014. Tashkent, Uzbekistan, November 25-27, 2014, pp. 100-103. 10. Urakseev MA, Vazhdaev K.V. Acoustooptical sensors of physical quantities: Scientific edition / M.A. Urakseev, K.V. Vazhdaev; Ufa State Academy of Economics and Service. - Ufa: UGAES, 2008. - 140 with. 11. Teleshevsky V.I. Heterodyne methods of laser interferometry based on acoustic light modulation // Measuring technique. - 1975. - №1. - from. 42-45. 12. Zubrinov II Acoustooptical converter of linear displacements and possibilities of its application. Zubrinov, V.I. Yurlov // Avtometriya. - 1999. - №5. - from. 97-101. 13. Balakshy V.I. Optoelectronic generator based on acoustooptic interaction. Ba-lakshy, I.A. Nagaev // Quantum Electronics. 1996. - No. 3, vol. 23. - p. 261-264. 14. Balakshy V.I. Physical principles of acoustooptics / V.I. Balakshy, V.N. Parygin. - Moscow: Radio and Communication, 1985. - 280 p. 15. R.A. Oliveira, “Characterization and new applications of the acousto-optic effect in fiber gratings”, Ph.D. dissertation, Federal University of Technology – Parana, 2011. 16. H.F. Taylor, “Bending effects in optical fibers”, Journal of Lightwave Thechnology, vol. LT-2, no. 5, pp. 617-627, 1984. 17. B. Y. Kim, J. N. Blake, H.E. Engan, and H.J. Shaw: Allfiber acousto-optic frequency shifter”, Optic Letters, vol. 11, no. 6, pp. 389-391, 1986. 18. T.A. Birks, P.St.J. Russel, and D.O. Culverhouse, “The acousto-optic effect in single-mode fiber tapers and couplers”, Journal of Lightwave Technology, vol. 14, no. 11, pp. 2519-2529, 1996. 19. T. Matsui, K. Nakajima, K. Shiraki, and T. Kurashima, “Ultra-broadband mode conversion with acousto-optic coupling in hole-assisted fiber”, Journal of Lightwave Technology, vol. 27, no. 13, pp. 2183-2188, 2009. 20. T.A. Birks, P. St. J. Russel, and C,N, Pannell, “Low power acousto-optic device passed on a tapered singlemode fiber”, IEEE Photonics Technology Lettes, vol. 6, no6, pp. 725-727, 1994. 21. R. Feced, C Alegria, M.N. Zervas, and R.I. Laming, “Acousto-optic attenuation filters based on tapered optical fibers” IEEE Journal Selected Topics in Quantum Electronics, vol. 5, no. 5, pp. 1278-1288, 1999. 22. J. Zhao and X. Liu, “Fiber acousto-optic mode coupling between the higher-order modes with adjacent azimuthal numbers”, Optic Letters, vol. 31, no. 11, pp. 1609-1611, 2006. 23. W. F. Liu, P. St. J. Russel, and L. Dong, “Acousto-optic superlattice modulator using a fiber Bragg grating”, Optic Letters, vol. 22, no. 19, pp. 1515-1517, 1997. 24. P. St. J. Russel and W. F. Liu, “Acousto-optic superlattice modulation in fiber Bragg grating”, Journal Optic Society of America, vol. 17, no. 8, pp. 1421-1429, 2000. 25. F. Abrishamian, S. Sato, and M. Imai, “A new method of solving multimode coupled equations for analysis of uniform and non-uniform fiber Bragg grating and its application to acousticly induced superstructure modulation”, Optical Review, vol. 12, no. 6, pp. 467-471, 2005. 26. R. A.Oliveira, P. T. NevesJr, J. T. Pereira, and A. P. P. Pohl, “Numerical approach for designing a Bragg grating acousto-optics modulator using finite element and transfer matrix methods”, Optic Communications, vol. 281, no. 19, pp. 4899-4905, 2008. 27. A.A.P. Pohl, K. Cook, and J. Canning, “Acoustic-induced modulation of photonic crystal fiber Bragg gratings”, In Proceeding of the 10th International Conference on Transparent Optical Networks, Athen, Greece, vol. 2, pp. 51-54, 2008. 28. S. W. James and R. P. Tatam, “Optical fibre long-perion grating sensors: characteristics and application”, Meaurement Science and Thecnology, vol. 14, no. 5, pp. R49-R61, 2003. 29. G. Rego, P. Marques, J. Santos, and H. Salgado, “Arcinduced long-period grating”, Fiber and Integrated Optics, vol. 24, no. 3-4, pp. 245-259, 2005. 30. R.A. Oliveira, G.R.C. Posseti, C.A.F. Marques, P.T. Never, K.Cook, R.C. Kamikawachi, et al., “Control of the long-period grating spectrum through low frequency flexural acoustic waves”, Measurement Science & Technology, vol. 22, no. 4, pp. 045205, 2011. 31. H.S. Kim, S.H. Yun, H.K. Kim, N. Park, and B.Y. Kim, “Dynamic erbium-doped fiber amplifier based on active gain-flattering with fiber acousto-optic tunable filters”, IEEE Photonics Technology Letters, vol. 12, no. 2, pp. 176-178, 2000.