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CRUSTAL STRUCTURE MODELS IN WESTERN PART OF ROMANIA USING CROSS CORRELATION OF SEISMIC NOISE AND RECEIVER FUNCTIONS

student Dragos Toma-Danila

First published: 2016-06-28https://doi.org/10.5593/sgem2016/b13/s05.056View metrics

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  • CrossRef - Citation Indexes: 1
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Publication details

Title
CRUSTAL STRUCTURE MODELS IN WESTERN PART OF ROMANIA USING CROSS CORRELATION OF SEISMIC NOISE AND RECEIVER FUNCTIONS
Authors
student Dragos Toma-Danila
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; 16th International Multidisciplinary Scientific GeoConference SGEM2016, Science and Technologies in Geology, Exploration and Mining
Publisher
Stef92 Technology
Year
2016
Pages
443-450
ISSN
1314-2704
ISBN
978-619-7105-57-5
Language
en
Publication type
Conference Paper
References26
  1. Ren Y., Stuart G.W., Houseman G.A., Dando B., Ionescu C., Hegedus E., Radovanovic S., Shen Y., South Carpathian Project Working Group, Upper mantle structures beneath the Carpathian-Pannonian region: Implications for the geodynamics of continental collision, Earth and Planet. Sci. Lett., vol. 349-350, pp 139-152, 2012.

  2. Snieder R., Extracting the Green’s Function from the Correlation of Coda Waves: A Derivation Based on Stationary Phase, Physical Revue, E69, 046610, 2004.

  3. Lin F.-C., Ritzwoller M.H., Townend J., Bannister S., Savage M.K., Ambient noise Rayleigh wave tomography of New Zealand, Geophys. J. Int., 170, pp 649-666, 2007.

  4. Yang Y., Ritzwoller M.H., Levshin A.L., Shapiro N.M., Ambient noise Rayleig h wave tomography across Europe, Geophys. J. Int., 168, pp 259–274, 2007.

  5. Herrmann R.B, Ammon C.J., Computer program in seismology; surface waves, receiver functions, and crustal structure, Version 3.15, Saint Louis University, 2002.

  6. Dziewonski A., Bloch S., Landisman M., A technique for the analysis of transient seismic signals, Bull. Seism. Soc. Am., vol. 59, pp 427– 444, 1969.

  7. Vinnik L.P., Detection of waves converted from P to SV in the mantle, Phys. Earth. Planet. Int., vol. 15, pp 39-45, 1977.

  8. Langston C. A., Structure under Mount Rainier, Washington, inferred from teleseismic body waves, Journal of Geophysical Research, vol. 86, pp 4748-4762, 1979.

  9. Eagar K.C., Fouch M.J., James D.E., Receiver function imaging of upper mantle complexity beneath the Pacific Northwest, United States: Earth and Plan etary Science Letters, vol. 297/ issue 1-2, pp 141-153, 2000.

  10. Ligorria J. P., Ammon C.J., Iterative deconvolution and receiver function estimation, Bull. Seismol. Soc. Am., vol. 89, pp 1395-1400, 1999.

  11. Zhu, L., Kanamori H., Moho depth variation in southern California from teleseismic receiver functions, J. Geophys. Res., vol. 105, pp 2969 2980, 2000.

  12. Julia, J., C. J. Ammon, R. B. Herrmann, A. M. Correig, Joint inversion of receiver function and surface wave dispersion observations, Geophys. J. Int., vol. 143, pp 1 -19, 2000.

  13. Hauser F., Raileanu V., Fielit z W., Dinu C., Landes M., Bala A., Prodehl C. , Seismic crustal structure between Transylvanian Basin and the Black Sea, Romania. Tectonophysics, 430, pp 1-25, 2007. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

  14. Ren Y., Stuart G.W., Houseman G.A., Dando B., Ionescu C., Hegedus E., Radovanovic S., Shen Y., South Carpathian Project Working Group, Upper mantle structures beneath the Carpathian-Pannonian region: Implications for the geodynamics of continental collision, Earth and Planet. Sci. Lett., vol. 349-350, pp 139-152, 2012.

  15. Snieder R., Extracting the Green’s Function from the Correlation of Coda Waves: A Derivation Based on Stationary Phase, Physical Revue, E69, 046610, 2004.

  16. Lin F.-C., Ritzwoller M.H., Townend J., Bannister S., Savage M.K., Ambient noise Rayleigh wave tomography of New Zealand, Geophys. J. Int., 170, pp 649-666, 2007.

  17. Yang Y., Ritzwoller M.H., Levshin A.L., Shapiro N.M., Ambient noise Rayleig h wave tomography across Europe, Geophys. J. Int., 168, pp 259–274, 2007.

  18. Herrmann R.B, Ammon C.J., Computer program in seismology; surface waves, receiver functions, and crustal structure, Version 3.15, Saint Louis University, 2002.

  19. Dziewonski A., Bloch S., Landisman M., A technique for the analysis of transient seismic signals, Bull. Seism. Soc. Am., vol. 59, pp 427– 444, 1969.

  20. Vinnik L.P., Detection of waves converted from P to SV in the mantle, Phys. Earth. Planet. Int., vol. 15, pp 39-45, 1977.

  21. Langston C. A., Structure under Mount Rainier, Washington, inferred from teleseismic body waves, Journal of Geophysical Research, vol. 86, pp 4748-4762, 1979.

  22. Eagar K.C., Fouch M.J., James D.E., Receiver function imaging of upper mantle complexity beneath the Pacific Northwest, United States: Earth and Plan etary Science Letters, vol. 297/ issue 1-2, pp 141-153, 2000.

  23. Ligorria J. P., Ammon C.J., Iterative deconvolution and receiver function estimation, Bull. Seismol. Soc. Am., vol. 89, pp 1395-1400, 1999.

  24. Zhu, L., Kanamori H., Moho depth variation in southern California from teleseismic receiver functions, J. Geophys. Res., vol. 105, pp 2969 2980, 2000.

  25. Julia, J., C. J. Ammon, R. B. Herrmann, A. M. Correig, Joint inversion of receiver function and surface wave dispersion observations, Geophys. J. Int., vol. 143, pp 1 -19, 2000.

  26. Hauser F., Raileanu V., Fielit z W., Dinu C., Landes M., Bala A., Prodehl C. , Seismic crustal structure between Transylvanian Basin and the Black Sea, Romania. Tectonophysics, 430, pp 1-25, 2007. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

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Number of times cited according to Crossref: 1

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