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Mar 5, 2019

Ionospheric Response to the Total Solar Eclipse of August 21, 2017, and Its Impact on GNSS Positioning

Publication: Journal of Surveying Engineering
Volume 145, Issue 2

Abstract

The solar eclipse on August 21, 2017, passed through North America and considerably affected the electron density in the ionosphere. By taking advantage of a global navigation satellite system (GNSS) for monitoring the ionosphere, the ionospheric response to the eclipse and its impact on GNSS positioning were investigated using data from the Oregon Real-Time GNSS Network (ORGN). From the dual-frequency GNSS observation, total electron content (TEC) was extracted along the signal ray path between a satellite and a station for observing the abnormality of the ionosphere. From the TEC observations during three sequential days—the day before, the day of, and the day after the eclipse—the rate of change of TEC (ROT) was derived to analyze the impact of solar eclipse on the ionospheric response. A distinctive reduction of the ROT was found on the day of eclipse. Moreover, the impact of the eclipse on GNSS positioning was examined by conducting an experiment of the baseline processing. Because of the unusual dynamics of the ionosphere during the eclipse, the GNSS positioning error during the event was notably increased. This experiment shows that the eclipse increased the ionospheric gradient between a station in the path and a station outside of the path of totality that significantly degraded the positioning performance.

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References

Abdul Rashid, Z. A., M. Awad Momani, S. Sulaiman, M. A. Mohd Ali, B. Yatim, G. Fraser, and N. Sato. 2006. “GPS ionospheric TEC measurement during the 23rd November 2003 total solar eclipse at Scott Base Antarctica.” J. Atmos. Sol. Terr. Phys. 68 (11): 1219–1236. https://doi.org/10.1016/j.jastp.2006.03.006.
Afraimovich, E. L., K. S. Palamartchouk, N. P. Perevalova, V. V. Chernukhov, A. V. Lukhnev, and V. T. Zalutsky. 1998. “Ionospheric effects of the solar eclipse of March 9, 1997, as deduced from GPS data.” Geophys. Res. Lett. 25 (4): 465–468. https://doi.org/10.1029/98GL00186.
Boehm, J., A. E. Niell, P. Tregoning, and H. Schuh. 2006. “Global mapping function (GMF): A new empirical mapping function based on numerical weather model data.” Geophys. Res. Lett. 33 (7): L07304. https://doi.org/10.1029/2005GL025546.
Calais, E., and J. B. Minster. 1995. “GPS detection of ionospheric perturbations following the January 17, 1994, Northridge earthquake.” Geophys. Res. Lett. 22 (9): 1045–1048. https://doi.org/10.1029/95GL00168.
Chimonas, G., and C. O. Hines. 1970. “Atmospheric gravity waves induced by a solar eclipse.” J. Geophys. Res. 75 (4): 875. https://doi.org/10.1029/JA075i004p00875.
Chimonas, G., and C. O. Hines. 1971. “Atmospheric gravity waves induced by a solar eclipse, 2.” J. Geophys. Res. 76 (28): 7003–7005. https://doi.org/10.1029/JA076i028p07003.
Coster, A. J., L. Goncharenko, S.-R. Zhang, P. J. Erickson, W. Rideout, and J. Vierinen. 2017. “GNSS observations of ionospheric variations during the 21 August 2017 solar eclipse.” Geophys. Res. Lett. 44: 12,041–12,048. https://doi.org/10.1002/2017GL075774.
Davies, K. 1990. Ionospheric radio. London: Peter Peregrinus.
Davis, M. J., and A. V. da Rosa. 1970. “Possible detection of atmospheric gravity waves generated by the solar eclipse.” Nature 226 (5251): 1123. https://doi.org/10.1038/2261123a0.
Heki, K. 2006. “Explosion energy of the 2004 eruption of the Asama Volcano, central Japan, inferred from ionospheric disturbances.” Geophys. Res. Lett. 33 (14): L14303. https://doi.org/10.1029/2006GL026249.
Jakowski, N. et al. 2008. “Ionospheric behavior over Europe during the solar eclipse of 3 October 2005.” J. Atmos. Sol. Terr. Phys. 70 (6): 836–853. https://doi.org/10.1016/j.jastp.2007.02.016.
Jones, T. B., D. M. Wright, J. Milner, T. K. Yeoman, T. Reid, P. J. Chapman, and A. Senior. 2004. “The detection of atmospheric waves produced by the total solar eclipse of 11 August 1999.” J. Atmos. Sol. Terr. Phys. 66 (5): 363–374. https://doi.org/10.1016/j.jastp.2004.01.029.
Kumar, K. V., A. K. Maurya, S. Kumar, and R. Singh. 2016. “22 July 2009 total solar eclipse induced gravity waves in ionosphere as inferred from GPS observations over EIA.” Adv. Space Res. 58 (9): 1755–1762. https://doi.org/10.1016/j.asr.2016.07.019.
Occhipinti, G., L. Rolland, P. Lognonné, and S. Watada. 2013. “From Sumatra 2004 to Tohoku-Oki 2011: The systematic GPS detection of the ionospheric signature induced by tsunamigenic earthquakes.” J. Geophys. Res. Space Physics 118: 3626–3636. https://doi.org/10.1002/jgra.50322.
Park, J., V. Sreeja, M. Aquino, C. Cesaroni, L. Spogli, A. Dodson, and G. De Franceschi. 2016. “Performance of ionospheric maps in support of long baseline GNSS kinematic positioning at low latitudes.” Radio Sci. 51 (5): 429–442. https://doi.org/10.1002/2015RS005933.
Park, J., R. R. B. von Frese, D. A. Grejner-Brzezinska, Y. Morton, and L. R. G. Pique. 2011. “Ionospheric detection of the 25 May 2009 North Korean underground nuclear test.” Geophys. Res. Lett. 38 (22): L22802. https://doi.org/10.1029/2011GL049430.
Saastamoinen, J. 1972. “Contributions to the theory of atmospheric refraction.” Bull. Géodésique 105 (1): 279–298. https://doi.org/10.1007/BF02521844.
Unnikrishnan, C. S., A. K. Mohapatra, and G. T. Gillies. 2001. “Anomalous gravity data during the 1997 total solar eclipse do not support the hypothesis of gravitational shielding.” Phys. Rev. D: Part. Fields 63 (6): 062002. https://doi.org/10.1103/PhysRevD.63.062002.
Wang, Q. S., X. S. Yang, C. Z. Wu, H. G. Guo, H. C. Liu, and C. C. Hua. 2000. “Precise measurement of gravity variations during a total solar eclipse.” Phys. Rev. D: Part. Fields 62 (4): 041101(R). https://doi.org/10.1103/PhysRevD.62.041101.

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Go to Journal of Surveying Engineering
Journal of Surveying Engineering
Volume 145Issue 2May 2019

History

Received: Jan 31, 2018
Accepted: Jul 25, 2018
Published online: Mar 5, 2019
Published in print: May 1, 2019
Discussion open until: Aug 5, 2019

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Authors

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Assistant Professor, School of Civil and Construction Engineering, Oregon State Univ., Corvallis, OR 97331 (corresponding author). Email: [email protected]
Anahita Shahbazi
Graduate Student, School of Civil and Construction Engineering, Oregon State Univ., Corvallis, OR 97331.
Su-Kyung Kim
Graduate Student, School of Civil and Construction Engineering, Oregon State Univ., Corvallis, OR 97331.
Randy Oberg
Lead Geodetic Surveyor, Oregon Dept. of Transportation, Salem, OR 97301.

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