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Variations of shear wave splitting in the 2008 Wenchuan earthquake region

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Abstract

Through the analysis of S-wave particle motion of local events in the shear wave window, the polarization directions of the faster shear wave and the delay times between the faster and the slower shear waves were derived from seismic recordings at the stations near the fault zones. The shear wave splitting results of seven stations in the area of Longmenshan fault zone reveal spatial variation of the polarization directions of the fast shear wave. The directions at stations in the southeastern side of the Longmenshan fault zone (in the Sichuan Basin area) are in the NE direction, whereas the direction at station PWU (in the Plateau), which is in the northwestern side of the faults, is in the EW direction. Systematic changes of the time delays between two split shear waves were also observed. At station L5501 in the southern end of the aftershock zone, the delay times of the slower shear wave decrease systematically after the main shock. After the main shock, the delay times at station PWU were longer than those before the earthquake. Seismic shear wave splitting is caused mostly by stress-aligned microcracks in the rock below the stations. The results demonstrate changes of local stress field during the main-shock and the aftershocks. The stress in the southern part of Wenchuan seismogenic zone was released by the main-shock and the aftershocks. The crustal stresses were transferred to the northeastern part of the zone, resulting in stress increase at station PWU after the main-shock.

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References

  1. Crampin S. The fracture criticality of crustal rocks. Geophys J Int, 1994, 118: 428–438

    Article  Google Scholar 

  2. Crampin S. Calculable fluid-rock interactions. J Geol Soc, 1999, 156: 501–514

    Article  Google Scholar 

  3. Liu K, Zhang Z J, Hu J F, et al. Frequency band-dependence of S-wave splitting in China mainland and its implications. Sci China Ser D-Earth Sci, 2001, 44(7): 659–665

    Article  Google Scholar 

  4. Zhang Z J, Teng J W, Badal J, et al. Construction of regional and local seismic anisotropic structures from wide-angle seismic data: Crustal deformation in the southeast of China. J Seism, 2008, doi: 10.1007/s10950-008-9124-0

  5. Crampin S, Volti T, Stefansson R. A successfully stress-forecast earthquake. Geophys J Int, 1999, 138: F1–F5

    Article  Google Scholar 

  6. Gao Y, Wang P D, Zheng S H, et al. Temporal changes in shear-wave splitting at an isolated swarm of small earthquakes in 1992 near Dongfang, Hainan Island, southern China. Geophys J Int, 1998, 135(1): 102–112

    Article  Google Scholar 

  7. Gao Y, Crampin S. Temporal variations of shear-wave splitting in field and laboratory in China. J Appl Geophys, 2003, 54: 279–287

    Article  Google Scholar 

  8. Booth D C, Crampin S. Shear-wave polarizations on a curved wavefront at an isotropic free-surface. Geophys J Royal Astron Soc, 1985, 83: 31–45

    Google Scholar 

  9. Menke W, Brandsdottir B, Jakobsdottir S, et al. Seismic anisotropy in the crust at the mid-Atlantic plate boundary in south-west Iceland. Geophs J Int, 1994, 119: 783–790

    Article  Google Scholar 

  10. Chen T C, Booth D C, Crampin S. Shear-wave polarizations near the North Anatolian fault — III. Observations of temporal changes. Geophys J Royal Astron Soc, 1987, 91: 287–311

    Google Scholar 

  11. Liu Y, Crampin S, Main I. Shear-wave anisotropy: Spatial and temporal variations in time delays at Parkfield, Central California. Geophys J Int, 1997, 130: 771–785

    Article  Google Scholar 

  12. Peacock S, Crampin S, Booth D C, et al. Shear-wave splitting in the Anza seismic gap, Southern California: Temporal variations as possible precursors. J Geophys Res, 1988, 93: 3339–3356

    Article  Google Scholar 

  13. Silver P G, Chan W W. Shear wave splitting and subcontinental deformation. J Geophys Res, 1991, 96: 16429–16454

    Article  Google Scholar 

  14. Shih X R, Meyer R P, Schneider J F. An automated, analytical method to determine shear-wave anisotropy. Tectonophysics, 1989, 165: 271–278

    Article  Google Scholar 

  15. Volti T, Crampin S. A four-year study of shear-wave splitting in Iceland: 1. Background and preliminary analysis. In: New Insights into Structural Interpretation and Modeling. Nieuwland D A. Geol Soc Lond, Spec Publ, 2003, 212: 117–133

    Google Scholar 

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Correspondence to ZhiFeng Ding.

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Supported by Special Project for the Fundamental R & D of Institute of Geophysics, China Earthquake Administration (CEA) (Grant No.DQJB08B20) and the CEA Project of “Scientific Investigation for the 2008 Wenchuan M8.0 Earthquake”

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Ding, Z., Wu, Y., Wang, H. et al. Variations of shear wave splitting in the 2008 Wenchuan earthquake region. Sci. China Ser. D-Earth Sci. 51, 1712–1716 (2008). https://doi.org/10.1007/s11430-008-0141-1

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  • DOI: https://doi.org/10.1007/s11430-008-0141-1

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