Estimation of the Atmospheric Turbulence Parameters Using the Angle-of-Arrival Covariance Function

A. Y. Shikhovtsev, P. G. Kovadlo, A. V. Kiselev, D. Y. Kolobov, V. P. Lukin, I. V. Russkikh, and M. Y. Shikhovtsev, “Modified method to detect the turbulent layers in the atmospheric boundary layer for the large solar vacuum telescope,’’ Atmosphere 12, 156 (2021).

Article  ADS  Google Scholar 

J. Borgnino, PhD Thesis (Université de Nice, 1978).

M. Xu, S. Shao, Q. Liu, G. Sun, Y. Han, and N. Weng, “Optical turbulence profile forecasting and verification in the offshore atmospheric boundary layer,” Appl. Sci. 11, 8523 (2021).

Article  Google Scholar 

T. Song, Z. Cai, Y. Liu, M. Zhao, Y. Fang, X. Zhang, J. Wang, X. Li, Q. Song, and Z. Du, “Daytime optical turbulence profiling with a profiler of the differential solar limb,” Mon. Not. R. Astron. Soc. 499 (2), 1909–1917 (2020).

Article  ADS  Google Scholar 

P.G. Kovadlo, A.Y. Shikhovtsev, and V.P. Lukin, “Development of the model of turbulent atmosphere at the Large Solar Vacuum Telescope site as applied to image adaptation,” Atmos. Ocean. Opt. 32 (2), 202–206 (2019).

Article  Google Scholar 

M. Xu, S. Shao, N. Weng, L. Zhou, Q. Liu, and Y. Zhao, “Atmospheric optical turbulence characteristics over the ocean relevant to astronomy and atmospheric physics,”. Appl. Sci. 11, 10548 (2021).

Article  Google Scholar 

R. Avila, A. Ziad, J. Borgnino, F. Martin, A. Agabi and A. Tokovinin, “Theoretical spatiotemporal analysis of angle of arrival induced by atmospheric turbulence as observed with the grating scale monitor experiment,” J. Opt. Soc. Am. A 14, 3070–3082 (1997).

Article  ADS  Google Scholar 

A. Berdja, A. Irbah and J. Borgnino, “Simulation of the anisoplanatic angle-of-arrival fluctuations measured on the solar edge images,” in EDPS Conference Series in Astronomy & Astrophysics, SF2A-2002: Semaine de l’Astrophysique Francaise, Paris, France, June 24–29, 2002, Ed by F. Combes and D. Barret (EdP-Sciences, 2002), p. 215.

J. Borgnino and F. Martin, “Analyse statistique des déformations aléatoires d’une surface d’onde dues à la turbulence atmosphérique au voisinage du sol. I.—Exposé de la méthode, Premiers résultats,” J. Optics (Paris) 8, 319326 (1977).

Google Scholar 

T. Butterley, R. W. Wilson, and M. Sarazin, “Determination of the profile of atmospheric optical turbulence strength from SLODAR data”, Mon. Not. R. Astron. Soc. 369, 835–845 (2006).

Article  ADS  Google Scholar 

R. Conan, PhD Thesis (Université de Nice-Sophia Antipolis, 2000).

J. Maire, PhD Thesis (Université de Nice-Sophia Antipolis, 2007).

S. L. Odintsov, V. A. Gladkikh, A. P. Kamardin, and I. V. Nevzorova, “Determination of the structural characteristic of the refractive index of optical waves in the atmospheric boundary layer with remote acoustic sounding facilities,” Atmosphere 10, 711 (2019).

Article  ADS  Google Scholar 

A. Y. Shikhovtsev, P. G. Kovadlo, and A. V. Kiselev “The method to restore the profiles of atmospheric turbulence from solar observations,” Proc. SPIE 112081E (2019). https://doi.org/10.1117/12.2540073

A. Shikhovtsev, P. Kovadlo, V. Lukin, A. Kiselev, D. Kolobov, E. Kopylov, M. Shikhovtsev, and F. Avdeev, “Statistics of the optical turbulence from the micrometeorological measurements at the Baykal Astrophysical Observatory site”. Atmosphere 10, 661 (2019).

Article  ADS  Google Scholar 

A. Y. Shikhovtsev, A. V. Kiselev, P. G. Kovadlo, D. Y. Kolobov, V. P. Lukin, and V. E. Tomin, “Method for estimating the altitudes of atmospheric layers with strong turbulence,” Atmos. Ocean. Opt. 33, 295–301 (2020).

Article  Google Scholar 

J. Chabé, E. Aristidi, A. Ziad, Y. Fantéi-Caujolle, H. Lantéri, C. Giordano, J. Borgnino, and C. Renaud, “Monitoring the atmospheric turbulence profile with high vertical resolution with the PML instrument.” HAL Id: hal-03122656(2021).

A. Ziad, E. Aristidi, J. Chabé, and J. Borgnino, “On the isoplanatic patch size in high-angular resolution technique,” MNRAS 487 (3), 3664–3671(2019).

ADS  Google Scholar 

C. Giordanoa, A. Ziada, E. Aristidia, J. Chabéb, Y. Fanteï-Caujollea, C. Renauda, and A. Rafalimanana, “CATS: Continuous turbulence characterization station for both optical link and astronomical support,” Proc. ICSO 11852, 118522D (2021). https://doi.org/10.1117/12.2599373

S. Changdong, W. Xiaoqing, W. Su, Y. Qike, H. Yajuan, Q. Chun, L. Tao, and L. Yi, “In situ measurements and neural network analysis of the profiles of optical turbulence over the Tibetan Plateau,” MNRAS 506, 3430–3438 (2021).

Article  Google Scholar 

V. P. Lukin, “Outer scale of turbulence and its influence on fluctuations of optical waves,” Phys.-Usp. 64, 280(2021).

Article  Google Scholar 

V. P. Lukin, E. V. Nosov, and B. V. Fortes, “The efficient outer scale of atmospheric turbulence,” in Proc. of the ESO/OSA Topical Meeting “Astronomy with Adaptive Optics: Present Results and Future Programs,” Sonthofen, Germany, September 7–11, 1998, Ed. by Domenico Bonaccini (European Southern Observatory, Garching, Germany, 1999), p. 619.

K. Levenberg, “A method for the solution of certain non-linear problems in least squares,” Q. Appl. Math. 2 (2), 164–168. https://doi.org/10.1090/qam/10666

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