DOI: 10.17586/1023-5086-2019-86-06-54-57
УДК: 621.396
Comparative studies of rangefinders radiating in the micron and one-and-a-half micron wavelength ranges
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Московченко Л.В., Сторощук О.Б., Иванов В.Н., Бученков В.А. Сравнительные исследования дальномеров, излучающих в микронном и полуторамикронном диапазонах длин волн // Оптический журнал. 2019. Т. 86. № 6. С. 54–57. http://doi.org/10.17586/1023-5086-2019-86-06-54-57
Moskovchenko L.V., Storoshchuk O.B., Ivanov V.N., Buchenkov V.A. Comparative studies of rangefinders radiating in the micron and one-and-a-half micron wavelength ranges [in Russian] // Opticheskii Zhurnal. 2019. V. 86. № 6. P. 54–57. http://doi.org/10.17586/1023-5086-2019-86-06-54-57
L. V. Moskovchenko, O. B. Storoshchuk, V. N. Ivanov, and V. A. Buchenkov, "Comparative studies of rangefinders radiating in the micron and one-and-a-half micron wavelength ranges," Journal of Optical Technology. 86(6), 370-373 (2019). https://doi.org/10.1364/JOT.86.000370
This paper presents the results of comparative field tests of rangefinders with an eye-safe radiation wavelength of λ=1.54 μm and a radiation wavelength of λ=1.06 μm under the same weather conditions. It was shown that the rangefinder with the radiation wavelength of λ=1.54 μm provides similar parameters for measuring the distance as the rangefinder with the radiation wavelength of λ=1.06 μm at significantly lower output radiation energies (by a factor of 3 to 4).
laser range finding, atmospheric propagation, diode-pumped lasers, erbium laser, neodymium laser
OCIS codes: 280.3400, 010.1300, 140.3480, 140.3500, 140.3530
References:1. V. E. Zuev, Propagation of Visible and Infrared Waves in the Atmosphere (Sov. Radio, Moscow, 1970).
2. L. Z. Kriksunov, Handbook of Basics of Infrared Technology (Sov. Radio, Moscow, 1978).
3. A. V. Gulin, G. I. Narkhova, and N. S. Ustimenko, “Multiwave Stokes components lasing in SRS self-converter KGd(WO 4 ) 2 :Nd 3+ lasers,” Kvant. Elektron. 25(39), 825–826 (1998).
4. L. V. Moskovchenko, O. B. Storoshchuk, and V. N. Ivanov, “Pulsed bimodal solid-state laser,” Russian patentRU 2548592 C2 (2013).
5. A. A. Krylov, V. A. Buchenkov, and A. V. Uskov, “Compact Q-switched Yb:Er laser with 10 Hz pulse repetition rate,” Kvant. Elektron. 48(7), 607–610 (2018).
6. V. I. Kozintsev, M. L. Belov, and V. M. Orlov, Principles of Pulsed Laser Ranging, Applied Electronics Series (N. É. Bauman MGTU, Moscow, 2010).