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The information content of high-frequency seismograms and the near-surface geologic structure of “hard rock” recording sites

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Abstract

Due to hardware developments in the last decade, the high-frequency end of the frequency band of seismic waves analyzed for source mechanisms has been extended into the audio-frequency range (>20 Hz). In principle, the short wavelengths corresponding to these frequencies can provide information about the details of seismic sources, but in fact, much of the “signal” is the site response of the nearsurface. Several examples of waveform data recorded at “hard rock” sites, which are generally assumed to have a “flat” transfer function, are presented to demonstrate the severe signal distortions, includingf max, produced by near-surface structures. Analysis of the geology of a number of sites indicates that the overall attenuation of high-frequency (>1 Hz) seismic waves is controlled by the whole-path-Q between source and receiver but the presence of distinctf max site resonance peaks is controlled by the nature of the surface layer and the underlying near-surface structure. Models of vertical decoupling of the surface and nearsurface and horizontal decoupling of adjacent sites on hard rock outcrops are proposed and their behaviour is compared to the observations of hard rock site response. The upper bound to the frequency band of the seismic waves that contain significant source information which can be deconvolved from a site response or an array response is discussed in terms off max and the correlation of waveform distortion with the outcrop-scale geologic structure of hard rock sites. It is concluded that although the velocity structures of hard rock sites, unlike those of alluvium sites, allow some audio-frequency seismic energy to propagate to the surface, the resulting signals are a highly distorted, limited subset of the source spectra.

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References

  • Aki, K. (1967),Scaling law of seismic spectrum, J. Geophys. Res.72, 1217–1231.

    Google Scholar 

  • Aki, K. (1987),The role of cohesive zone in earthquake source mechanics [abs.], EOS (Trans. Amer. Geophys. Un.)68, 1242.

    Google Scholar 

  • Aki, K. (1987),The role of cohesive zone in earthquake source mechanics [abs.], EOS (Trans. Amer. Geophys. Un.)68, 1242.

    Google Scholar 

  • Aki, K. andB. Chouet (1975),Origin of coda waves: source, attenuation, and scattering effects, J. Geophys. Res.80, 3322–3342.

    Google Scholar 

  • Aki, K. andP. G. Richards,Quantitative Seismology: Theory and Methods, Vols. I–II (W. H. Freeman and Company, San Francisco, California 1980).

    Google Scholar 

  • Anderson, J. G. andS. E. Hough (1984),A model for the shape of Fourier amplitude spectra of acceleration at high frequencies, Bull. Seismol. Soc. Am.73, 1969–1994.

    Google Scholar 

  • Andrews, D. J. (1986),Objective determination of source parameters and similarity of earthquakes of different size, inEarthquake Source Mechanics (eds. S. Das, J. Boatwright, and C. Scholz) Geophysical Monograph 37, Maurice Ewing Volume 6 (American Geophysical Union) pp. 259–267.

  • Andrews, M. C., W. D. Mooney, andR. P. Meyer (1985),The relocation of microearthquakes in the northern Mississippi Embayment, J. Geophys. Res.90, 10,223–10,236.

    Google Scholar 

  • Archuleta, R. J., E. Cranswick, C. S. Mueller, andP. Spudich (1982),Source parameters of the 1980 Mammoth Lakes, California, earthquake swarm, J.Geophys. Res.87, 4595–4607.

    Google Scholar 

  • Berger, J., L. M. Baker, J. N. Brune, J. B. Fletcher, T. C. Hanks, andF. L. Vernon (1984),The Anza array: A high-dynamic-range broadband, digitally radiotelemetered seismic network, Bull. Seismol. Soc. Am.74, 1469–1481.

    Google Scholar 

  • Boatwright, J. (1984),Characteristics of the aftershock sequence of the Borah Peak, Idaho, earthquake determined from digital recordings of the events, Bull. Seismol. Soc. Am.75, 1265–1284.

    Google Scholar 

  • Borcherdt, R. D., J. B. Fletcher, E. G. Jensen, G. L. Maxwell, J. R. VanSchaack, R. E. Warrick, E. Cranswick, M. J. S. Johnston, andR. McClearn (1985),A general earthquake observation system (GEOS), Bull. Seismol. Soc. Am.75, 1783–1825.

    Google Scholar 

  • Borcherdt, R. D., E. Cranswick, G. Maxwell, C. Mueller, R. McClearn, E. Sembera, andL. Wennerberg (1983),Digital strong-motion data of the Coalinga earthquake sequence commencing May 2, 1983, U. S. Geol. Surv. Open-File Rep. 83-511.

  • Brune, J. N. (1970),Tectonic stress and the spectra of seismic shear waves from earthquakes, J. Geophys. Res.75, no. 26.

    Google Scholar 

  • Brune, J. N. (1971),Correction, J. Geophys. Res.76, no. 20.

  • Carver, D., R. A. Williams, andE. Cranswick, (1987),The Olney, Illinois, Earthquake of June 10, 1987: A Preliminary Report (Section II), U.S. Geol. Surv. Open-File Rep. 87-623.

  • Chael, E. P. (1987),Spectral scaling of earthquakes in the Miramichi region of New Brunswick, Bull. Seismol. Soc. Am.77, 347–365.

    Google Scholar 

  • Cranswick, E. (1988),Microearthquakes recorded by a micro-array at a “hard-rock” near Crested Butte, Colorado [abs.], American Geophysical Union Front Range Meeting, Colorado School of Mines, Golden, CO, 11–12 Feb. 1988.

  • Cranswick, E. andL. R. Sykes (1978),Teleseismic P-wave residuals and lithospheric structure in New York State and vicinity [abs.], EOS (Trans. Amer. Geophys. Un.)59, 391.

    Google Scholar 

  • Cranswick, E., C. S. Mueller, R. W. Wetmiller, andE. Sembera (1982),Local Multistation Digital Recordings of Aftershocks of the January 9, 1982 New Brunswick, U.S. Geol. Surv. Open-File Rep. 82-777.

  • Cranswick, E., E. Sembera, andC. Dietel (1985a),On the information content of the acoustic frequency band of high sample rate, high dynamic range digital seismograms [abs.], Programs and Abstracts, 57th Annual Meeting of the Eastern Section of the Seismological Society America, Knoxville, TN.

  • Cranswick, E., R. Wetmiller, andJ. Boatwright (1985b),High-frequency observations and source parameters of microearthquakes recorded at hard-rock sites, Bull. Seismol. Soc. Am.75, 1535–1567.

    Google Scholar 

  • Cranswick, E., V. S. Deshpande, S. L. Harmsen, C. J. Langer, andD. L. Butler (1987),Procedure of a micro-array experiment on earthquake swarm activity near Crested Butte, Colorado [abs.], Annual Meeting of the Seismology Society of America, March, Santa Barbara, CA.

  • Cranswick, E. andE. Sembera (1988),Earthquake site/source studies in the AE/MA domain, Proceedings of the Fourth Conference on Acoustic Emission/Microseismic Activity in Geologic Structures and Materials, H. R. Hardy, Jr. and F. W. Leighton (editors), TransTech Publications.

  • Ebel, J. E., V. Vudler, andM. Celata (1982),The 1981 microearthquake swarm near Moodus, Connecticut, Geophysical Res. Letters9, 397–400.

    Google Scholar 

  • Everden, J. E., C. B. Archambeau, andE. Cranswick (1986),An evaluation of seismic decoupling and underground nuclear test monitoring using high frequency seismic data, Rev. Geophys.24, 143–215.

    Google Scholar 

  • Fletcher, J. B., M. L. Sbar, andL. R. Sykes (1978),Seismic trends and travel-time residuals in eastern North America and their tectonic implications, Bull. Seismol. Soc. Am.89, 1656–1676.

    Google Scholar 

  • Fletcher, J. B., R. L. Zepeda, andD. M. Boore (1981),Digital seismograms of aftershocks of the Imperial Valley earthquake of October 15, 1979, U.S. Geol. Surv. Open-File Rep. 81-655.

  • Fletcher, J., L. Haar, T. Hanks, L. Baker, F. Vernon, J. Berger, andJ. Brune (1987),The digital seismic array at Anza, California: Processing and intial interpretation of source parameters, J. Geophys. Res.92, 369–382.

    Google Scholar 

  • Frankel, A. andR. W. Clayton (1984),A finite-difference simulation of wave propagation in two-dimensional random media. Bull. Seismol. Soc. Am.74, 2167–2186.

    Google Scholar 

  • Frankel, A. andR. W. Clayton (1986),Finite difference simulations of seismic scattering: Implications for the propagation of short-period seismic waves in the crust and models of crustal heterogeneity, J. Geophys. Res.91, 6465–6489.

    Google Scholar 

  • Frankel, A., J. Fletcher, F. Vernon, L. Haar, J. Berger, T. Hanks, andJ. Brune (1986),Rupture characteristics and tomographic source imaging of M L ∼3 earthquakes near Anza, Souther California, J. Geophys. Res.91, 12,633–12,650.

    Google Scholar 

  • Fuis, G. S., W. D. Mooney, J. H. Healy, G. A. McMechan, andW. J. Lutter (1982),Crustal structure of the Imperial Valley region, U.S. Geol. Surv. Profess. Paper 1254, 25–49.

    Google Scholar 

  • Hanks, T. C. (1982),f max , Bull. Seismol. Soc. Am.,72, 1867–1879.

    Google Scholar 

  • Haar, L. C., J. B. Fletcher, andC. S. Mueller (1984),The 1982 Enola, Arkansas, swarm and scaling of ground motion in eastern United States, Bull. Seismol. Soc. Am.74, 2463–2482.

    Google Scholar 

  • Hartzell, S. H. (1978),Earthquake aftershocks as Green's functions, Geophys. Res. Lett.,5, 1–4.

    Google Scholar 

  • Haskell, N. A. (1960),Crustal reflection of plane SH waves, J. Geophys. Res.,65, 4147–4150.

    Google Scholar 

  • Hauksson, E., T.-L. Teng andT. L. Henyey (1987),Results from a 1500 m deep, three-level downhole seismometer array: site response, low Q values, and f max , Bull. Seismol. Soc. Am.,77, 1883–1904.

    Google Scholar 

  • Joyner, W., R. E. Warrick, andA. A. Oliver (1976),Analysis of seismograms from a downhole array in sediments near San Francisco Bay, Bull. Seismol. Soc. Am.66, 937–958.

    Google Scholar 

  • Kanasewich, E. R.,Time Sequence Analysis in Geophysics, 3rd ed. (The University of Alberta Press, Edmonton, Alberta, Canada 1981).

    Google Scholar 

  • King, J. L. andB. E. Tucker (1984),Observed variations of earthquake motion across a sediment-filled valley, Bull. Seismol. Soc. Am.74, 137–151.

    Google Scholar 

  • McKay, D. A. andJ. B. Williams, J. R. Bowlby andJ. D. Grass (1985),Miramichi Epicentral Area—In Situ Stress Pilot Project, Ontario Hydro Research Division, Report no. 85-185-K, 26 July 1985.

  • McMechan, G. A. andW. D. Mooney (1980),Asymptopic ray theory and synthetic seismograms for laterally varying: Theory and application to Imperial Valley, California, Bull. Seismol. Soc. Am.70, 2021–2035.

    Google Scholar 

  • Mueller, C. S. andE. Cranswick (1985),Source parameters from locally recorded aftershocks of the January 9, 1982 Miramichi, New Brunswick earthquake, Bull. Seismol. Soc. Am.75, 337–360.

    Google Scholar 

  • Murphy, J. M. andJ. H. Luetgert (1987),Data report for the 1984 Maine along-strike seismic refraction profiles, U.S. Geol. Surv. Open-File Rep. (in press).

  • Mutschler, F. E. (1970),Geologic map of Snowmass Mountain Quadrangle, Pitkin and Gunnison Counties, Colorado, U.S. Geological Survey, Washington, D.C.

    Google Scholar 

  • Nafe, J. E., andC. L. Drake (1957),Variation with depth in shallow and deep water marine sediments of porosity, density, and the velocities of compressional and shear waves, Geophysics22, 523–552.

    Google Scholar 

  • Papageorgio, A. S. andK. Aki (1983),A specific barrier model for the quantitative description of inhomogeneous faulting and the prediction of strong ground motion, I. Description of the model, Bull. Seismol. Soc. Am.73, 693–722.

    Google Scholar 

  • Pomeroy, P. W., D. W. Simpson, andM. L. Sbar (1976),Earthquakes triggered by surface quarrying—the Wappingers Falls, New York, sequence of June, 1974, Bull. Seismol. Soc. Am.66, 685–700.

    Google Scholar 

  • Press, F. (1966),Seismic velocities, in Handbook of Physical Constants (ed. S. P. Clark) Geo. Soc. of Amer. Mem.97, 195–218.

  • Scherbaum, F. (1987a),Seismic imaging of the site response using microearthquake recordings. Part I. Method, Bull. Seismol. Soc. Am.77, 1905–1923.

    Google Scholar 

  • Scherbaum, F. (1987b),Seismic imaging of the site response using microearthquake recordings. Part II. Application to the Swabian Jura, southwest Germany, Seismic network, Bull. Seismol. Soc. Am.77, 1924–1944.

    Google Scholar 

  • Schner, R., L. Sykes, E. Cranswick, andJ. Yang (1975–1978), Monthly Bulletin of the LDGO New York State Seismograph Network, Lamont-Doherty Geological Observatory, Columbia University, Palisades, New York.

    Google Scholar 

  • Seeber, L., E. Cranswick, J. Armbruster, andN. Barstowe (1984),The October 1983 Good-now aftershock sequence, regional seismicity and structural features in the Adirondacks [abs.], EOS (Trans. Amer. Geophys. Un.),65, 240.

    Google Scholar 

  • Shearer, P. M. andJ. A. Orcutt (1987), Surface and near-surface effects on seismic waves-theory and borehole seismometer results, Bull. Seismol. Soc. Am.77, 1168–1196.

    Google Scholar 

  • Simmons, G., J. Mann, andF. Miller (1984),Velocity of compressional waves in New England Crust [abs.], EOS (Trans. Amer. Geophys. Un.),65, 278.

    Google Scholar 

  • Spudich, P. andE. Cranswick (1984),Direct observation of rupture propagation during the 1979 Imperial Valley earthquake using a short baseline accelerometer array, Bull. Seismol. Soc. Am.74, 2083–2114.

    Google Scholar 

  • Spudich, P. andL. N. Frazer (1984),Use of ray theory to calculate high-frequency radiation from earthquake sources having spatially variable rupture velocity and stress drop, Bull. Seismol. Soc. Am.74, 2061–2082.

    Google Scholar 

  • Tucker, B. E., J. L. King, andI. L. Neresov (1984),Observations of hard-rock site-effects, Bull. Seismol. Soc. Am.74, 137–151.

    Google Scholar 

  • Wennerberg, L. andA. Frankel (1987),Site response and spectra of earthquakes determined from the Anza seismic network [abs.], Seism. Res. Let.58, 25.

    Google Scholar 

  • Wetmiller, R. J., J. Adams, F. M. Anglin, H. S. Hasegawa, andA. E. Stevens (1984),Aftershock sequences of the 1982 Miramichi, New Brunswick, earthquake, Bull. Seismol. Soc. Am.74, 621–653.

    Google Scholar 

  • Wu, R. S. andK. Aki (1985b)Scattering of elastic waves by a random medium and small scale inhomogeneities in the lithosphere, J. Geophys. Res.90, 10261–10276.

    Google Scholar 

  • Yang, J.-P., Y. P. Aggarwal, E. Cranswick, S. Nishenko, andJ. Beavan (1978),An earthquake swarm in northern New Jersey [abs.], EOS (Trans. Amer. Geophys. Un.),59, 317.

    Google Scholar 

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Cranswick, E. The information content of high-frequency seismograms and the near-surface geologic structure of “hard rock” recording sites. PAGEOPH 128, 333–363 (1988). https://doi.org/10.1007/BF01772604

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