Research Article
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Year 2025, Volume: 13 Issue: 1, 110 - 131, 01.03.2025
https://doi.org/10.36306/konjes.1554353

Abstract

References

  • D.A. Robinson, A. Binley, N. Crook, F.D. Day-Lewis, T.P.A. Ferre, V.J.S. Grauch, R. Knight, M. Knoll, V. Lakshmi, R. Miller, J. Nyquist, L. Pelleri, K. Singha, and L. Slater, “Advancing process-based watershed hydrological research using near-surface geophysics: a vision for, and review of, electrical and magnetic geophysical methods,” Hydrological Processes, vol. 22, pp. 3604–3635, 2008.
  • L.V. Socco, and C. Strobbia, “Surface-wave method for near-surface characterization: a tutorial,” Near Surface Geophysics, vol. 2, pp. 165–185, 2004.
  • V. Pérez-Gracia, J.O. Caselles, J. Clapes, R. Osorio, G. Martínez, and J.A. Canas, “Integrated near-surface geophysical survey of the Cathedral of Mallorca,” Journal of Archaeological Science, vol. 36, pp. 1289–1299, 2009.
  • Y. Huang, and M. Yu, Hazard analysis of seismic soil liquefaction. Springer, Singapore, 2017.
  • V. Balaram, “Rare earth elements: a review of applications, occurrence, exploration, analysis, recycling, and environmental impact,” Geoscience Frontiers, vol. 10, pp. 1285–1303, 2019.
  • C. Lin, X. Wang, L. Nie, H. Sun, Z. Xu, Y. Du, and L. Liu, “Comprehensive geophysical investigation and analysis of lining leakage for water-rich rock tunnels: a case study of Kaiyuan Tunnel, Jinan, China,” Geotechnical and Geological Engineering, vol. 38, pp. 3449–3468, 2020.
  • E.A. Ayolabi, A.F. Folorunso, and O.T. Kayode, “Integrated methods for environmental Assessment of municipal dumpsite system,” International Journal of Geosciences, vol. 4, pp. 850–862, 2013.
  • M. Everett, Near-surface applied geophysics. Cambridge University Press, 2013.
  • A. Turesson, “A comparison of methods for the analysis of compressional, shear, and surface wave seismic data, and determination of the shear modulus,” Journal of Applied Geophysics, vol. 61, pp. 83–91, 2007.
  • K. Luxbacher, E. Westman, P. Swanson, and M. Karfakis, “Three-dimensional time-lapse velocity tomography of an underground longwall panel,” International Journal of Rock Mechanics and Mining Sciences, vol. 45, pp. 478–485, 2008.
  • C.B. Park, R.D. Miller, and J. Xia, “Multichannel analysis of surface waves,” Geophysics, vol. 64, pp. 800808, 1999.
  • A. Ali, M. Ullah, A. Barkat, W.A. Raza, and A. Qadir, “Multi-channel analysis of surface waves (MASW) using dispersion and iterative inversion techniques: implications for cavity detection and geotechnical site investigation,” Bulletin of Engineering Geology and the Environment, vol. 80, pp. 9217–9235, 2021.
  • G. Dal Moro, “MASW? A critical perspective on problems and opportunities in surface-wave analysis from active and passive data (with few legal considerations),” Physics and Chemistry of the Earth, vol. 130, pp. 103369, 2023.
  • H. Nakahara, K. Emoto, and T. Nishimura, “Extending the formulation of the spatial autocorrelation (SPAC) method to strain, rotation and tilt,” Geophysical Journal International, vol. 227, pp. 287–302, 2021
  • C. Feng, K. Yamaoka, R. Ikuta, T. Watanabe, and S. Tsuji, “Surface wave monitoring using ambient noise for detecting temporal variations in underground structures in landslide area,” Engineering Geology, vol. 341, pp. 107706, 2024.
  • Q. Liu, L. Lu, K. Wang, L. Chang, and Y. Zhu, “Rayleigh Wave Phase Velocity Maps at Regional Scale Inferring from SPAC of Ambient Noise at a Dense Array: A Case Study in Northeastern Tibetan Plateau,” Pure and Applied Geophysics, vol. 180, pp. 1973–1988, 2023.
  • S. Coccia, V. Del Gaudio, N. Venisti, and J. Wasowski, “Application of Refraction Microtremor (ReMi) technique for determination of 1-D shear wave velocity in a landslide area,” Journal of Applied Geophysics, vol. 71, pp. 71–89, 2010.
  • J.N. Louie, A. Pancha, and B. Kissane, “Guidelines and pitfalls of refraction microtremor surveys,” Journal of Seismology, vol. 26, pp. 567–582, 2022.
  • K. Aki, “Space and time spectra of stationary stochastic waves, with special reference to microseisms,” Bulletin of the Earthquake Research Institute, vol. 35, pp. 415–456, 1957.
  • T.F. Abdallatif, A.A. Khozyma, and A.A. Ghandour, “Determination of Seismic Site Class and Potential Geologic Hazards using Multi-Channel Analysis of Surface Waves (MASW) at the Industrial City of Abu Dhabi, UAE,” Journal of Astronomy and Geophysics, vol. 11, pp. 193–209, 2022.
  • B. Mi, J. Xia, J.H. Bradford, and C. Shen, “Estimating Near‑Surface Shear‑Wave‑Velocity Structures Via Multichannel Analysis of Rayleigh and Love Waves: An Experiment at the Boise Hydrogeophysical Research Site,” Surveys in Geophysics, vol. 41, pp. 323–341, 2020.
  • K. Zheng, W. Hou, J. Li, J. Yang, Y. Yang, F. Xiao, and Y. Chen, “Imaging urban near-surface structure with passive surface waves method: A case study in Guangzhou, southern China,” Journal of Applied Geophysics, vol. 215, pp. 105089, 2023.
  • M. Asten, A. Askan, and S. Karimzadeh, “Blind study site assessment of shear-wave velocity at Kumamoto City, Japan, using direct-fitting SPAC methods,” Earth, Planets and Space, vol. 75, pp. 40, 2023.
  • Q. Liu, L. Lu, T. Qin, and L. Chang, “Determination of surface-wave phase velocities by zeros of Aki’s spectrum of active-source records. Application to the dense array in Tongzhou, China,” Earthquake Science, vol. 38, pp. 1–16, 2024.
  • K. Abdelrahman, A.B. Saadon, and S. Qaysi, “Estimating shear wave velocity and site characterization of western Riyadh City, Saudi Arabia based on multichannel analysis of surface waves,” Frontiers in Earth Science, vol. 12, pp. 1395431, 2024.
  • A. Kaviani, A. Paul, A. Moradi, P.M. Mai, S. Pilia, L. Boschi, G. Rümpker, Y. Lu, Z. Tang, and E. Sandvol, “Crustal and uppermost mantle shear wave velocity structure beneath the Middle East from surface wave tomography,” Geophysical Journal International, vol. 221, pp. 1349–1365, 2020.
  • Z. Zhang, H. Yao, and Y. Yang, “Shear wave velocity structure of the crust and upper mantle in Southeastern Tibet and its geodynamic implications,” Science China Earth Sciences, vol. 63, pp. 1278–1293, 2020.
  • K.A. Berteussen, “Moho depth determinations based on spectral analysis of NORSAR long period P waves,” Physics of the Earth and Planetary Interiors, vol. 15, pp. 13–27, 1977.
  • R.B. Herrmann, Computer programs in seismology, version 3.30. St. Louis University, Missouri, United States, 2002.
  • Y. Luo, J. Xia, R.D. Miller, Y. Xu, J. Liu, and Q. Liu, “Rayleigh-wave mode separation by high-resolution linear radon transform,” Geophysical Journal International, vol. 179, pp. 254–264, 2009.
  • A. Dziewonski, S. Bloch, and M. Landisman, “A technique for the analysis of transient seismic signals,” Bulletin of Seismological Society of America, vol. 59, pp. 427–444, 1969.
  • Ö. Çakır, and Y.A. Kutlu, “A New Method for Selecting the Phase and Group Velocity Dispersion Curves of Rayleigh and Love Surface Waves: Real Data Case of Central Anatolia, Turkey (Türkiye),” Indonesian Journal of Earth Sciences, vol. 3, pp. 795, 2023.
  • L. Gao, J. Xia, Y. Pan, and Y. Xu, “Reason and Condition for Mode Kissing in MASW Method,” Pure and Applied Geophysics, vol. 173, pp. 1627–1638, 2016.
  • Ö. Çakır, and N. Coşkun, “Theoretical Issues with Rayleigh Surface Waves and Geoelectrical Method Used for the Inversion of Near Surface Geophysical Structure,” Journal of Human, Earth, Future, vol. 2, pp. 183–199, 2021.
  • D.J. Zywicki, and G.J. Rix, “Mitigation of Near-Field Effects for Seismic Surface Wave Velocity Estimation with Cylindrical Beamformers,” Journal of Geotechnical and Geoenvironmental Engineering, vol. 131, pp. 970–977, 2005.
  • A. Tarantola, “Linearized inversion of seismic reflection data,” Geophysical Prospecting, vol. 32, pp. 998–10115, 1984.
  • R.J. Geller, and T. Hara, “Two efficient algorithms for iterative linearized inversion of seismic waveform data,” Geophysical Journal International, vol. 115, pp. 699–710, 1993.
  • Ö. Çakır, “Seismic crust structure beneath the Aegean region in southwest Turkey from radial anisotropic inversion of Rayleigh and Love surface waves,” Acta Geophysica, vol. 66, pp. 1303–1340, 2018.
  • Ö. Çakır, “Love and Rayleigh Waves Inverted for Vertical Transverse Isotropic Crust Structure beneath the Biga Peninsula and the surrounding area in NW TURKEY,” Geophysical Journal International, vol. 216, pp. 2081–2105, 2019.
  • Ö. Çakır, “The multilevel fast multipole method for forward modelling the multiply scattered seismic surface waves,” Geophysical Journal International, vol. 167, pp. 663-678, 2006.
  • I.B. Morozov, and M. Din, “Use of receiver functions in wide-angle controlled-source crustal data sets,” Geophysical Journal International, vol. 173, pp. 299–308, 2008.
  • V. Maupin, “Upper-mantle structure in southern Norway from beamforming of Rayleigh wave data presenting multipathing,” Geophysical Journal International, vol. 185, pp. 985–1002, 2011.
  • Ö. Çakır, “A multilevel fast multipole method to compute propagation of multiply scattered 2.5-D teleseismic surface waves underneath a linear or quasi-linear seismic station array,” International Journal of Physical Sciences, vol. 7, pp. 5687–5700, 2012.
  • J. Julià, C.J. Ammon, R.B. Herrmann, and A.M. Correig, “Joint inversion of receiver function and surface wave dispersion observations,” Geophysical Journal International, vol. 143, pp. 99–112, 2000.
  • Ö. Çakır, and N. Coşkun, “Love Surface Waves and Electrical Resistivity Used to Delineate the Near Surface Geophysical Structure: Theoretical Considerations,” Earth Sciences Malaysia, vol. 5, pp. 104–113, 2021.
  • Ö. Çakır, and N. Coşkun, “Dispersion of Rayleigh Surface Waves and Electrical Resistivities Utilized to Invert Near Surface Structural Heterogeneities,” Journal of Human, Earth, Future, vol. 3, pp. 1–16, 2022.
  • P.P. Kruiver, M. Pefkos, E. Meijles, G. Aalbersberg, X. Campman, W. van der Veen, A. Martin, K. Ooms‑Asshoff, J. J. Bommer, A. Rodriguez‑Marek, R. Pinho, H. Crowley, F. Cavalieri, A.A. Correia, and J. van Elk, “Incorporating dwelling mounds into induced seismic risk analysis for the Groningen gas field in the Netherlands,” Bulletin of Earthquake Engineering, vol. 20, pp. 255–285, 2022.
  • K. Leontarakis, C. Orfanos, and G. Apostolopoulos, “Common-midpoint cross-correlation stacking tomography: A 3D approach for frequency-dependent mapping of Rayleigh waves, group and phase velocity throughout an active seismic network,” Near Surface Geophysics, vol. 21, pp. 39–64, 2023.
  • I. Barone, J. Boaga, A. Carrera, A. Flores-Orozco, and G. Cassiani, “Tackling Lateral Variability Using Surface Waves: A Tomography-Like Approach,” Surveys in Geophysics, vol. 42, pp. 317–338, 2021.
  • F. Cheng, J. Xia, C. Shen, Y. Hu, Z. Xu, and B. Mi, “Imposing Active Sources during High-Frequency Passive Surface-Wave Measurement,” Engineering, vol. 4, pp. 685–693, 2018.
  • B. Mi, J. Xia, J.H. Bradford, and C. Shen, “Estimating Near-Surface Shear-Wave-Velocity Structures Via Multichannel Analysis of Rayleigh and Love Waves: An Experiment at the Boise Hydrogeophysical Research Site,” Surveys in Geophysics, vol. 41, pp. 323–341, 2020.
  • M.S. Craig, K. Hayashi, and Ö. Kozacı, “Active and passive seismic surface wave methods for levee assessment in the Sacramento–San Joaquin Delta, California, USA,” Near Surface Geophysics, vol. 19, pp. 141–154, 2021.
  • J. Pang, J. Xia, C. Zhou, X. Chen, F. Cheng, and H. Xing, “Common-midpoint two-station analysis of estimating phase velocity using high-frequency ambient noise,” Soil Dynamics and Earthquake Engineering, vol. 159, pp. 107356, 2022.
  • K. Hayashi, M.W. Asten, W.J. Stephenson, C. Cornou, M. Hobiger, M. Pilz, and H. Yamanaka, “Microtremor array method using spatial autocorrelation analysis of Rayleigh-wave data,” Journal of Seismology, vol. 26, pp. 601–627, 2022.
  • F.J. Chávez-García, M.V. Manakou, F. Hollender, and D.G. Raptakis, “Site effects using methods based on lateral homogeneity and laterally heterogeneous media: An impossible marriage?,” Bulletin of Earthquake Engineering, vol. 16, pp. 2729–2756, 2018.
  • F. Cheng, J. Xia, Z. Xu, Y. Hu, and B. Mi, “Frequency–Wavenumber (FK)-Based Data Selection in High-Frequency Passive Surface Wave Survey,” Surveys in Geophysics, vol. 39, pp. 661–682, 2018.
  • K. Hayashi, and H. Suzuki, “CMP cross-correlation analysis of multi-channel surface-wave data,” Exploration Geophysics, vol. 35, pp. 7–13, 2004.
  • K. Hayashi, J.M. Lorenzo, and A. Gostic, “Application of 2D ambient noise tomography to levee safety assessment in New Orleans,” The Leading Edge, vol. 37, pp. 740–745, 2018.

ONE-STATION, DOUBLE-STATION AND ARRAY ANALYSIS OF RAYLEIGH SURFACE WAVES APPLIED TO A COMMON-SHOT GATHER: A PROGRAMMED TECHNIQUE DESCRIBED THROUGH SYNTHETIC SEISMOGRAMS IN NEAR-SURFACE

Year 2025, Volume: 13 Issue: 1, 110 - 131, 01.03.2025
https://doi.org/10.36306/konjes.1554353

Abstract

The knowledge of near-surface shear-vibration speed (i.e., V_S30) is crucial to properly define the dynamic characteristic of shallow subsurface in the earthquake mitigation efforts. In this respect, we propose a programmed technique in which the Rayleigh surface vibrations are solved for the determination of two-dimensional (2D) speed structure (vertically polarized shear-vibration – V_SV) in terms of fundamental mode (FM) dispersal curves (both group and phase speeds). The synthetic seismograms are calculated to simulate the real Earth and then the three data processing procedures, i.e., the weighted preconditioned linear radon transform (WPLRT), one-station (OS) approach and double-station (DS) approach, are sequentially applied to these synthetics. The common-shot gather (CSG) is assumed as data collection geometry. The WPLRT is first used to produce a phase speed dispersal curve from which the one-dimensional (1D) V_SV structure corresponding to the average structure underneath the CSG is inverted. The average 1D V_SV structure between the source and receiver is next inverted using the OS group speed dispersal curve where the number of OS curves is proportional to the number of geophones. In the third step, the average 1D V_SV structure corresponding to the DS pathway is inverted utilizing the group and phase speed curves where the number of DS curves is proportional to the number of inter-station pathways. Hundreds of dispersal curves (both group and phase speeds) take place in each step of the proposed technique. To select the associated dispersal curve, a programmed scheme is established. The studied area is described in terms of grid points and then the OS and DS dispersal curves are transferred into unique dispersal curves at these grid points for which a set of linear systems defined through travel times are solved. A pseudo 2D cross-section beneath the studied area is eventually established by merging the 1D V_SV structures found by the inversion of dispersal curves at grid points.

References

  • D.A. Robinson, A. Binley, N. Crook, F.D. Day-Lewis, T.P.A. Ferre, V.J.S. Grauch, R. Knight, M. Knoll, V. Lakshmi, R. Miller, J. Nyquist, L. Pelleri, K. Singha, and L. Slater, “Advancing process-based watershed hydrological research using near-surface geophysics: a vision for, and review of, electrical and magnetic geophysical methods,” Hydrological Processes, vol. 22, pp. 3604–3635, 2008.
  • L.V. Socco, and C. Strobbia, “Surface-wave method for near-surface characterization: a tutorial,” Near Surface Geophysics, vol. 2, pp. 165–185, 2004.
  • V. Pérez-Gracia, J.O. Caselles, J. Clapes, R. Osorio, G. Martínez, and J.A. Canas, “Integrated near-surface geophysical survey of the Cathedral of Mallorca,” Journal of Archaeological Science, vol. 36, pp. 1289–1299, 2009.
  • Y. Huang, and M. Yu, Hazard analysis of seismic soil liquefaction. Springer, Singapore, 2017.
  • V. Balaram, “Rare earth elements: a review of applications, occurrence, exploration, analysis, recycling, and environmental impact,” Geoscience Frontiers, vol. 10, pp. 1285–1303, 2019.
  • C. Lin, X. Wang, L. Nie, H. Sun, Z. Xu, Y. Du, and L. Liu, “Comprehensive geophysical investigation and analysis of lining leakage for water-rich rock tunnels: a case study of Kaiyuan Tunnel, Jinan, China,” Geotechnical and Geological Engineering, vol. 38, pp. 3449–3468, 2020.
  • E.A. Ayolabi, A.F. Folorunso, and O.T. Kayode, “Integrated methods for environmental Assessment of municipal dumpsite system,” International Journal of Geosciences, vol. 4, pp. 850–862, 2013.
  • M. Everett, Near-surface applied geophysics. Cambridge University Press, 2013.
  • A. Turesson, “A comparison of methods for the analysis of compressional, shear, and surface wave seismic data, and determination of the shear modulus,” Journal of Applied Geophysics, vol. 61, pp. 83–91, 2007.
  • K. Luxbacher, E. Westman, P. Swanson, and M. Karfakis, “Three-dimensional time-lapse velocity tomography of an underground longwall panel,” International Journal of Rock Mechanics and Mining Sciences, vol. 45, pp. 478–485, 2008.
  • C.B. Park, R.D. Miller, and J. Xia, “Multichannel analysis of surface waves,” Geophysics, vol. 64, pp. 800808, 1999.
  • A. Ali, M. Ullah, A. Barkat, W.A. Raza, and A. Qadir, “Multi-channel analysis of surface waves (MASW) using dispersion and iterative inversion techniques: implications for cavity detection and geotechnical site investigation,” Bulletin of Engineering Geology and the Environment, vol. 80, pp. 9217–9235, 2021.
  • G. Dal Moro, “MASW? A critical perspective on problems and opportunities in surface-wave analysis from active and passive data (with few legal considerations),” Physics and Chemistry of the Earth, vol. 130, pp. 103369, 2023.
  • H. Nakahara, K. Emoto, and T. Nishimura, “Extending the formulation of the spatial autocorrelation (SPAC) method to strain, rotation and tilt,” Geophysical Journal International, vol. 227, pp. 287–302, 2021
  • C. Feng, K. Yamaoka, R. Ikuta, T. Watanabe, and S. Tsuji, “Surface wave monitoring using ambient noise for detecting temporal variations in underground structures in landslide area,” Engineering Geology, vol. 341, pp. 107706, 2024.
  • Q. Liu, L. Lu, K. Wang, L. Chang, and Y. Zhu, “Rayleigh Wave Phase Velocity Maps at Regional Scale Inferring from SPAC of Ambient Noise at a Dense Array: A Case Study in Northeastern Tibetan Plateau,” Pure and Applied Geophysics, vol. 180, pp. 1973–1988, 2023.
  • S. Coccia, V. Del Gaudio, N. Venisti, and J. Wasowski, “Application of Refraction Microtremor (ReMi) technique for determination of 1-D shear wave velocity in a landslide area,” Journal of Applied Geophysics, vol. 71, pp. 71–89, 2010.
  • J.N. Louie, A. Pancha, and B. Kissane, “Guidelines and pitfalls of refraction microtremor surveys,” Journal of Seismology, vol. 26, pp. 567–582, 2022.
  • K. Aki, “Space and time spectra of stationary stochastic waves, with special reference to microseisms,” Bulletin of the Earthquake Research Institute, vol. 35, pp. 415–456, 1957.
  • T.F. Abdallatif, A.A. Khozyma, and A.A. Ghandour, “Determination of Seismic Site Class and Potential Geologic Hazards using Multi-Channel Analysis of Surface Waves (MASW) at the Industrial City of Abu Dhabi, UAE,” Journal of Astronomy and Geophysics, vol. 11, pp. 193–209, 2022.
  • B. Mi, J. Xia, J.H. Bradford, and C. Shen, “Estimating Near‑Surface Shear‑Wave‑Velocity Structures Via Multichannel Analysis of Rayleigh and Love Waves: An Experiment at the Boise Hydrogeophysical Research Site,” Surveys in Geophysics, vol. 41, pp. 323–341, 2020.
  • K. Zheng, W. Hou, J. Li, J. Yang, Y. Yang, F. Xiao, and Y. Chen, “Imaging urban near-surface structure with passive surface waves method: A case study in Guangzhou, southern China,” Journal of Applied Geophysics, vol. 215, pp. 105089, 2023.
  • M. Asten, A. Askan, and S. Karimzadeh, “Blind study site assessment of shear-wave velocity at Kumamoto City, Japan, using direct-fitting SPAC methods,” Earth, Planets and Space, vol. 75, pp. 40, 2023.
  • Q. Liu, L. Lu, T. Qin, and L. Chang, “Determination of surface-wave phase velocities by zeros of Aki’s spectrum of active-source records. Application to the dense array in Tongzhou, China,” Earthquake Science, vol. 38, pp. 1–16, 2024.
  • K. Abdelrahman, A.B. Saadon, and S. Qaysi, “Estimating shear wave velocity and site characterization of western Riyadh City, Saudi Arabia based on multichannel analysis of surface waves,” Frontiers in Earth Science, vol. 12, pp. 1395431, 2024.
  • A. Kaviani, A. Paul, A. Moradi, P.M. Mai, S. Pilia, L. Boschi, G. Rümpker, Y. Lu, Z. Tang, and E. Sandvol, “Crustal and uppermost mantle shear wave velocity structure beneath the Middle East from surface wave tomography,” Geophysical Journal International, vol. 221, pp. 1349–1365, 2020.
  • Z. Zhang, H. Yao, and Y. Yang, “Shear wave velocity structure of the crust and upper mantle in Southeastern Tibet and its geodynamic implications,” Science China Earth Sciences, vol. 63, pp. 1278–1293, 2020.
  • K.A. Berteussen, “Moho depth determinations based on spectral analysis of NORSAR long period P waves,” Physics of the Earth and Planetary Interiors, vol. 15, pp. 13–27, 1977.
  • R.B. Herrmann, Computer programs in seismology, version 3.30. St. Louis University, Missouri, United States, 2002.
  • Y. Luo, J. Xia, R.D. Miller, Y. Xu, J. Liu, and Q. Liu, “Rayleigh-wave mode separation by high-resolution linear radon transform,” Geophysical Journal International, vol. 179, pp. 254–264, 2009.
  • A. Dziewonski, S. Bloch, and M. Landisman, “A technique for the analysis of transient seismic signals,” Bulletin of Seismological Society of America, vol. 59, pp. 427–444, 1969.
  • Ö. Çakır, and Y.A. Kutlu, “A New Method for Selecting the Phase and Group Velocity Dispersion Curves of Rayleigh and Love Surface Waves: Real Data Case of Central Anatolia, Turkey (Türkiye),” Indonesian Journal of Earth Sciences, vol. 3, pp. 795, 2023.
  • L. Gao, J. Xia, Y. Pan, and Y. Xu, “Reason and Condition for Mode Kissing in MASW Method,” Pure and Applied Geophysics, vol. 173, pp. 1627–1638, 2016.
  • Ö. Çakır, and N. Coşkun, “Theoretical Issues with Rayleigh Surface Waves and Geoelectrical Method Used for the Inversion of Near Surface Geophysical Structure,” Journal of Human, Earth, Future, vol. 2, pp. 183–199, 2021.
  • D.J. Zywicki, and G.J. Rix, “Mitigation of Near-Field Effects for Seismic Surface Wave Velocity Estimation with Cylindrical Beamformers,” Journal of Geotechnical and Geoenvironmental Engineering, vol. 131, pp. 970–977, 2005.
  • A. Tarantola, “Linearized inversion of seismic reflection data,” Geophysical Prospecting, vol. 32, pp. 998–10115, 1984.
  • R.J. Geller, and T. Hara, “Two efficient algorithms for iterative linearized inversion of seismic waveform data,” Geophysical Journal International, vol. 115, pp. 699–710, 1993.
  • Ö. Çakır, “Seismic crust structure beneath the Aegean region in southwest Turkey from radial anisotropic inversion of Rayleigh and Love surface waves,” Acta Geophysica, vol. 66, pp. 1303–1340, 2018.
  • Ö. Çakır, “Love and Rayleigh Waves Inverted for Vertical Transverse Isotropic Crust Structure beneath the Biga Peninsula and the surrounding area in NW TURKEY,” Geophysical Journal International, vol. 216, pp. 2081–2105, 2019.
  • Ö. Çakır, “The multilevel fast multipole method for forward modelling the multiply scattered seismic surface waves,” Geophysical Journal International, vol. 167, pp. 663-678, 2006.
  • I.B. Morozov, and M. Din, “Use of receiver functions in wide-angle controlled-source crustal data sets,” Geophysical Journal International, vol. 173, pp. 299–308, 2008.
  • V. Maupin, “Upper-mantle structure in southern Norway from beamforming of Rayleigh wave data presenting multipathing,” Geophysical Journal International, vol. 185, pp. 985–1002, 2011.
  • Ö. Çakır, “A multilevel fast multipole method to compute propagation of multiply scattered 2.5-D teleseismic surface waves underneath a linear or quasi-linear seismic station array,” International Journal of Physical Sciences, vol. 7, pp. 5687–5700, 2012.
  • J. Julià, C.J. Ammon, R.B. Herrmann, and A.M. Correig, “Joint inversion of receiver function and surface wave dispersion observations,” Geophysical Journal International, vol. 143, pp. 99–112, 2000.
  • Ö. Çakır, and N. Coşkun, “Love Surface Waves and Electrical Resistivity Used to Delineate the Near Surface Geophysical Structure: Theoretical Considerations,” Earth Sciences Malaysia, vol. 5, pp. 104–113, 2021.
  • Ö. Çakır, and N. Coşkun, “Dispersion of Rayleigh Surface Waves and Electrical Resistivities Utilized to Invert Near Surface Structural Heterogeneities,” Journal of Human, Earth, Future, vol. 3, pp. 1–16, 2022.
  • P.P. Kruiver, M. Pefkos, E. Meijles, G. Aalbersberg, X. Campman, W. van der Veen, A. Martin, K. Ooms‑Asshoff, J. J. Bommer, A. Rodriguez‑Marek, R. Pinho, H. Crowley, F. Cavalieri, A.A. Correia, and J. van Elk, “Incorporating dwelling mounds into induced seismic risk analysis for the Groningen gas field in the Netherlands,” Bulletin of Earthquake Engineering, vol. 20, pp. 255–285, 2022.
  • K. Leontarakis, C. Orfanos, and G. Apostolopoulos, “Common-midpoint cross-correlation stacking tomography: A 3D approach for frequency-dependent mapping of Rayleigh waves, group and phase velocity throughout an active seismic network,” Near Surface Geophysics, vol. 21, pp. 39–64, 2023.
  • I. Barone, J. Boaga, A. Carrera, A. Flores-Orozco, and G. Cassiani, “Tackling Lateral Variability Using Surface Waves: A Tomography-Like Approach,” Surveys in Geophysics, vol. 42, pp. 317–338, 2021.
  • F. Cheng, J. Xia, C. Shen, Y. Hu, Z. Xu, and B. Mi, “Imposing Active Sources during High-Frequency Passive Surface-Wave Measurement,” Engineering, vol. 4, pp. 685–693, 2018.
  • B. Mi, J. Xia, J.H. Bradford, and C. Shen, “Estimating Near-Surface Shear-Wave-Velocity Structures Via Multichannel Analysis of Rayleigh and Love Waves: An Experiment at the Boise Hydrogeophysical Research Site,” Surveys in Geophysics, vol. 41, pp. 323–341, 2020.
  • M.S. Craig, K. Hayashi, and Ö. Kozacı, “Active and passive seismic surface wave methods for levee assessment in the Sacramento–San Joaquin Delta, California, USA,” Near Surface Geophysics, vol. 19, pp. 141–154, 2021.
  • J. Pang, J. Xia, C. Zhou, X. Chen, F. Cheng, and H. Xing, “Common-midpoint two-station analysis of estimating phase velocity using high-frequency ambient noise,” Soil Dynamics and Earthquake Engineering, vol. 159, pp. 107356, 2022.
  • K. Hayashi, M.W. Asten, W.J. Stephenson, C. Cornou, M. Hobiger, M. Pilz, and H. Yamanaka, “Microtremor array method using spatial autocorrelation analysis of Rayleigh-wave data,” Journal of Seismology, vol. 26, pp. 601–627, 2022.
  • F.J. Chávez-García, M.V. Manakou, F. Hollender, and D.G. Raptakis, “Site effects using methods based on lateral homogeneity and laterally heterogeneous media: An impossible marriage?,” Bulletin of Earthquake Engineering, vol. 16, pp. 2729–2756, 2018.
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There are 58 citations in total.

Details

Primary Language English
Subjects Seismology
Journal Section Research Article
Authors

Özcan Çakır 0000-0002-1989-6922

Publication Date March 1, 2025
Submission Date September 22, 2024
Acceptance Date January 16, 2025
Published in Issue Year 2025 Volume: 13 Issue: 1

Cite

IEEE Ö. Çakır, “ONE-STATION, DOUBLE-STATION AND ARRAY ANALYSIS OF RAYLEIGH SURFACE WAVES APPLIED TO A COMMON-SHOT GATHER: A PROGRAMMED TECHNIQUE DESCRIBED THROUGH SYNTHETIC SEISMOGRAMS IN NEAR-SURFACE”, KONJES, vol. 13, no. 1, pp. 110–131, 2025, doi: 10.36306/konjes.1554353.