A high-resolution dispersion imaging method of seismic surface waves based on chirplet transform

被引:5
作者
Su, Qin [1 ,2 ]
Xu, Xingrong [2 ]
Wang, Zhinong [3 ]
Sun, Chengyu [3 ]
Guo, Yaozong [3 ]
Wu, Dunshi [2 ]
机构
[1] Univ Elect Sci & Technol China, Sch Resources & Environm, Chengdu 610000, Peoples R China
[2] PetroChina, Res Inst Petr Explorat & Dev Northwest, Lanzhou 730020, Peoples R China
[3] China Univ Petr East China, Qingdao 266580, Peoples R China
关键词
surface waves; dispersion imaging; chirplet transform; time-frequency analysis; dispersion curve; ENERGY; MODEL; ATTENUATION; INVERSION; CURVES;
D O I
10.1093/jge/gxab061
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The surface-wave analysis method is widely adopted to build a near-surface shear-wave velocity structure. Reliable dispersion imaging results form the basis for subsequent picking and inversion of dispersion curves. In this paper, we present a high-resolution dispersion imaging method (CSFK) of seismic surface waves based on chirplet transform (CT). CT introduces the concept of chirp rate, which could focus surface-wave dispersion energy well in time-frequency domain. First, each seismic trace in time-distance domain is transformed to time-frequency domain by CT. Thus, for each common frequency gather, we obtain a series of 2D complex-valued functions of time and distance, which are called pseudo-seismograms. Then, we scan a series of group velocities to obtain the slanting-phase function and perform a spatial Fourier transform on the slanting-phase function to get its amplitude. In addition, power operation is adopted to increase the amplitude difference between dispersion energy and noise. Finally, we generate the dispersion image by searching for the maximum amplitude of a slanting-phase function. Because the CSFK method considers the position of surface-wave energy in the time-frequency domain, this largely eliminates the noise interference from other time locations and improves the resolution and signal-to-noise ratio of the dispersion image. The results of synthetic test and field dataset processing demonstrate the effectiveness of the proposed method. In addition, we invert all 120 sets of dispersion curves extracted from reflected wave seismic data acquired for petroleum prospecting. The one-dimensional inversion shear-wave velocity models are interpolated into a two-dimensional profile of shear-wave velocity, which is in good agreement with the borehole data.
引用
收藏
页码:908 / 919
页数:12
相关论文
共 40 条
[1]  
[Anonymous], 1991, Vision Interface
[2]   Estimation of surface-wave group velocity using slant stack in the generalized S-transform domain [J].
Askari, Roohollah ;
Hejazi, S. Hossein .
GEOPHYSICS, 2015, 80 (04) :EN83-EN92
[3]   Surface-and guided-wave inversion for near-surface modeling in land and shallow marine seismic data [J].
Boiero, Daniele ;
Wiarda, Edward ;
Vermeer, Peter .
Leading Edge, 2013, 32 (06) :638-646
[4]  
Boiero D, 2011, GEOPHYSICS, V76, pG85, DOI [10.1190/GEO2011-0124.1, 10.1190/geo2011-0124.1]
[5]   Free-mode surface-wave computations [J].
Buchen, PW ;
BenHador, R .
GEOPHYSICAL JOURNAL INTERNATIONAL, 1996, 124 (03) :869-887
[6]   Inversion of shallow-seismic wavefields: II. Inferring subsurface properties from wavefield transforms [J].
Forbriger, T .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2003, 153 (03) :735-752
[7]   Guidelines for the good practice of surface wave analysis: a product of the InterPACIFIC project [J].
Foti, Sebastiano ;
Hollender, Fabrice ;
Garofalo, Flora ;
Albarello, Dario ;
Asten, Michael ;
Bard, Pierre-Yves ;
Comina, Cesare ;
Cornou, Cecile ;
Cox, Brady ;
Di Giulio, Giuseppe ;
Forbriger, Thomas ;
Hayashi, Koichi ;
Lunedei, Enrico ;
Martin, Antony ;
Mercerat, Diego ;
Ohrnberger, Matthias ;
Poggi, Valerio ;
Renalier, Florence ;
Sicilia, Deborah ;
Socco, Valentina .
BULLETIN OF EARTHQUAKE ENGINEERING, 2018, 16 (06) :2367-2420
[8]  
Gabor, 1946, Journal of the Institution of Electrical Engineers-Part III: Radio and Communication Engineering, V93, P429
[9]   A comparative study of near-surface velocity model building derived by 3D traveltime Tomography and Dispersion Curves Inversion techniques [J].
Ghanem, K. G. ;
Sharafeldin, S. M. ;
Saleh, A. A. ;
Mabrouk, W. M. .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2017, 154 :126-138
[10]   CYCLE-OCTAVE AND RELATED TRANSFORMS IN SEISMIC SIGNAL ANALYSIS [J].
GOUPILLAUD, P ;
GROSSMANN, A ;
MORLET, J .
GEOEXPLORATION, 1984, 23 (01) :85-102