Skip to main content

Advertisement

Log in

A strong-motion database from the Central American subduction zone

  • Original Article
  • Published:
Journal of Seismology Aims and scope Submit manuscript

Abstract

Subduction earthquakes along the Pacific Coast of Central America generate considerable seismic risk in the region. The quantification of the hazard due to these events requires the development of appropriate ground-motion prediction equations, for which purpose a database of recordings from subduction events in the region is indispensable. This paper describes the compilation of a comprehensive database of strong ground-motion recordings obtained during subduction-zone events in Central America, focusing on the region from 8 to 14° N and 83 to 92° W, including Guatemala, El Salvador, Nicaragua and Costa Rica. More than 400 accelerograms recorded by the networks operating across Central America during the last decades have been added to data collected by NORSAR in two regional projects for the reduction of natural disasters. The final database consists of 554 triaxial ground-motion recordings from events of moment magnitudes between 5.0 and 7.7, including 22 interface and 58 intraslab-type events for the time period 1976–2006. Although the database presented in this study is not sufficiently complete in terms of magnitude–distance distribution to serve as a basis for the derivation of predictive equations for interface and intraslab events in Central America, it considerably expands the Central American subduction data compiled in previous studies and used in early ground-motion modelling studies for subduction events in this region. Additionally, the compiled database will allow the assessment of the existing predictive models for subduction-type events in terms of their applicability for the Central American region, which is essential for an adequate estimation of the hazard due to subduction earthquakes in this region.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Abrahamson NA, Silva WJ (1997) Empirical response spectral attenuation relations for shallow crustal earthquakes. Seismol Res Lett 68(1):94–127

    Google Scholar 

  • Akkar S, Bommer JJ (2006) Influence of long-period filter cut-off on elastic spectral displacements. Earthq Eng Struct Dyn 35(9):1145–1165

    Article  Google Scholar 

  • Ambraseys NN, Adams RD (2001) The seismicity of Central America. A descriptive catalogue 1898–1995. Imperial College Press, London, p 309

    Google Scholar 

  • Ambraseys NN, Bommer JJ, Buforn E, Udías A (2001) The earthquake sequence of May 1951 at Jucuapa, El Salvador. J Seismol 5(1):23–39

    Article  Google Scholar 

  • Arango MC (2010) Ground-motion prediction for subduction-zone earthquakes: insights from South and Central American data. PhD Thesis, Imperial College London

  • Arango MC, Strasser FO, Bommer JJ, Boroschek R, Comte D, Tavera H (2011) A strong-motion database from the Peru–Chile subduction zone. J Seismol. doi:10.1007/s10950-010-9203-x

    Google Scholar 

  • Atakan K (1995) A review of the type of data and techniques used in the empirical estimation of local site response, vol II. In: Proceedings of the 5th international conference on seismic zonation. Nice, France, pp 1451–1460

  • Atkinson GM, Boore DM (2003) Empirical ground-motion relations for subduction-zone earthquakes and their application to Cascadia and other regions. Bull Seismol Soc Am 93(4):1703–1729

    Article  Google Scholar 

  • Atkinson GM, Boore DM (2008) Erratum to: empirical ground-motion relations for subduction-zone earthquakes and their application to Cascadia and other regions. Bull Seismol Soc Am 98(4):2567–2569

    Article  Google Scholar 

  • Atakan K, Ciudad Real M, Torres R (2004) Local site effects on microtremors, weak and strong ground motion in San Salvador, El Salvador. In: Rose WI, Bommer JJ, López DL, Carr MJ, Major JJ (eds) Special paper 375: natural hazards in El Salvador. Geological Society of America, Boulder, pp 321–338

    Chapter  Google Scholar 

  • Benito Oterino MB, Torres Fernández Y (eds) (2009) Amenaza sísmica en América central. Entimema, Madrid, p 371

    Google Scholar 

  • Bilek SL, Lay T (1999) Comparison of depth dependent fault zone properties in the Japan Trench and Middle America Trench. Pure Appl Geophys 154(3–4):433–456

    Article  Google Scholar 

  • Bommer JJ, Rodríguez CE (2002) Earthquake-induced landslides in Central America. Eng Geol 63(3/4):189–220

    Article  Google Scholar 

  • Bommer JJ, Udías A, Cepeda JM, Hasbun JC, Salazar WM, Suárez A, Ambraseys NN, Buforn E, Cortina J, Madariaga R, Méndez P, Mezcua J, Papastamatiou D (1997) A new digital accelerograph network for El Salvador. Seismol Res Lett 68:426–437

    Google Scholar 

  • Bommer JJ, Benito MB, Ciudad-Real M, Lemoine A, Lopez-Menjivar MA, Madariaga R, Mankelow J, Mendez de Hasbun P, Murphy W, Nieto-Lovo M, Rodriguez-Pineda CE, Rosa H (2002) The El Salvador earthquakes of January and February 2001: context, characteristics and implications for seismic risk. Soil Dyn Earthquake Eng 22(5):389–418

    Article  Google Scholar 

  • Boore DM (2008) TSPP: a collection of FORTRAN programs for processing and manipulating time series. Available online from http://www.daveboore.com/software_online.htm. Last accessed December 2009

  • Cepeda JM, Benito MB, Burgos EA (2004) Strong-motion characteristics of January and February 2001 earthquakes in El Salvador. In: Rose WI, Bommer JJ, López DL, Carr MJ, Major JJ (eds) Special paper 375: natural hazards in El Salvador. Geological Society of America, Boulder, pp 405–421

    Chapter  Google Scholar 

  • Climent A, Midorikawa S, Matsuoka M, Toshinawa T (1992) Processed strong-motion data of near-source accelerograms obtained from Costa Rican Electricity Institute strong-motion network in 1990 and 1991. DEETEC report 920207. Division of Earthquake Engineering, Tokyo Institute of Technology, Tokyo

  • Climent A, Schmidt V, Hernández D, Cepeda J, Camacho E, Escobar R, Strauch W, Rivas J (2007) Strong-motion monitoring. In: Bundschuh J, Alvarado GE (eds) Central America: geology, resources and hazards, vol 2, chapter 39. Routledge, New York

    Google Scholar 

  • DeMets C (2001) A new estimate for present-day Cocos-Caribbean plate motion: implications for slip along the Central American volcanic arc. Geophys Res Lett 28(21):4043–4046

    Article  Google Scholar 

  • DeShon HR, Schwartz SY, Bilek SL, Dorman LM, Gonzalez V, Protti JM, Flueh ER, Dixon TH (2003) Seismogenic zone structure of the southern middle America Trench, Costa Rica. J Geophys Res 108(B10):B002294

    Article  Google Scholar 

  • DeShon HR, Schwartz SY, Newman AV, González V, Protti M, Dorman LM, Dixon TH, Sampson DE, Flueh ER (2006) Seismogenic zone structure beneath the Nicoya Peninsula, Costa Rica, from three-dimensional local earthquake P- and S-wave tomography. Geophys J Int 164(1):109–124

    Article  Google Scholar 

  • Douglas J, Bungum H, Dahle A, Lindholm C, Climent A, Taylor Castillo W, Santos Lopez P, Schmidt V, Strauch W (2004) Dissemination of Central American strong-motion data using Strong-Motion Datascape Navigator. CD-ROM collection

  • EERI (1991) The Costa Rica earthquake of 22 April 1991—EERI reconnaissance report. Earthquake Spectra 7(S2):1–165

    Article  Google Scholar 

  • Engdahl ER, van der Hilst R, Buland R (1998) Global teleseismic earthquake relocation with improved travel times and procedures for depth determination. Bull Seismol Soc Am 88(3):722–743

    Google Scholar 

  • Faccioli EE, Santayo V, Leone JL (1973) Microzonation criteria and seismic response studies for the city of Managua. In: Proceedings of the Earthquake Engineering Research Institute conference on the Managua, Nicaragua, earthquake of December 23, 1972, vol 1, pp 271–291

  • Faccioli E, Battistella C, Alemani P, Tibaldi A (1988) Seismic microzoning investigations in the metropolitan area of San Salvador, El Salvador, following the destructive earthquake of 10 October 1986. In: Proceedings of the international seminar on earthquake engineering. Innsbruck, Austria, pp 28–65

    Google Scholar 

  • Field EH, Jacob KH (1995) Comparison of various site response estimation techniques, including three that are not reference site depending. Bull Seismol Soc Am 85(4):1127–1142

    Google Scholar 

  • Frischbutter A (2002) Structure of the Managua Graben, Nicaragua, from remote sensing images. Geofisica Internacional 41(2):87–102

    Google Scholar 

  • Frohlich C, Apperson KD (1992) Earthquake focal mechanisms, moment tensors, and the consistency of seismic activity near plate boundaries. Tectonics 11(2):279–296

    Article  Google Scholar 

  • Haghshenas E, Bard P-Y, Theodulidis N, SESAME WP04 Team (2008) Empirical evaluation of microtremor H/V spectral ratio. Bull Earthquake Eng 6(1):75–108

    Article  Google Scholar 

  • Hansen SE, Schwartz SY, DeShon HR, González V (2006) Earthquake relocation and focal mechanism determination using waveform cross correlation, Nicoya Peninsula, Costa Rica. Bull Seismol Soc Am 96(3):1003–1011

    Article  Google Scholar 

  • Hradecky P, Hayliceck P, Navarro M, Novak Z, Stanik E, Sebesta J (1997) Estudio para el reconocimiento de la amenaza geológica en el área de Managua, Nicaragua. Technical report, CGU/INETER, Prague and Managua, p 320

  • Husen S, Kissling E, Quintero R (2002) Tomographic evidence for a subducted seamount beneath the Gulf of Nicoya, Costa Rica: the cause of the 1990 Mw = 7.0 Gulf of Nicoya earthquake. Geophys Res Lett 29(8):L014045

    Article  Google Scholar 

  • INETER (1995) 1:500,000 geological map of Nicaragua. Nicaraguan Institute of Territorial Studies (INETER)

  • INETER (2003) 1:50,000 geological map of Managua. Nicaraguan Institute of Territorial Studies (INETER)

  • IGN (1993) 1:500,000 geological map of Guatemala. National Geographical Institute of Guatemala (IGN)

  • Kanamori H, Kikuchi M (1993) The 1992 Nicaragua earthquake: a slow tsunami earthquake associated with subducted sediments. Nature 361:714–716

    Article  Google Scholar 

  • Konno K, Ohmachi T (1998) Ground-motion characteristics estimated from spectral ratio between horizontal and vertical components of microtremor. Bull Seismol Soc Am 88(1):228–241

    Google Scholar 

  • Lee VW, Trifunac MD (1990) Automatic digitization and processing of accelerograms using PC. Report CE-90-03. Department of Civil Engineering, University of Southern California, Los Angeles, p 115

  • LeFevre LV, McNally KC (1985) Stress distribution and subduction of aseismic ridges in the Middle America subduction zone. J Geophys Res 90(B6):4495–4510

    Article  Google Scholar 

  • Lermo J, Chávez-García FJ (1993) Site effect evaluation using spectral ratios with only one station. Bull Seismol Soc Am 83(5):1574–1594

    Google Scholar 

  • Ligorría JP, Atakan K (1997) Empirical site response estimation in Guatemala City. In: Proceedings of the seminar on assessment and mitigation of seismic risk in the Central American area. San Salvador, El Salvador, pp 141–156

    Google Scholar 

  • Martínez-Díaz JJ, Álvarez-Gómez JA, Benito B, Hernández D (2004) Triggering of destructive earthquakes in El Salvador. Geology 32(1):65–68

    Article  Google Scholar 

  • McVerry G, Zhao J, Abrahamson N, Somerville P (2006) New Zealand acceleration response spectrum attenuation relations for crustal and subduction zone earthquakes. Bull New Zeal Soc Earthquake Eng 39(1):1–58

    Google Scholar 

  • Moya A (2009) Inversión de efectos de sitio y factor Q utilizando cocientes espectrales. Estudios Geológicos 65(1):67–77

    Article  Google Scholar 

  • Moya A, Schmidt V, Segura C, Boschini I, Atakan K (2000) Empirical evaluation of site effects in the metropolitan area of San José, Costa Rica. Soil Dyn Earthquake Eng 20(1–4):177–185

    Article  Google Scholar 

  • NEHRP (1997) Recommended provisions for seismic regulations for new buildings and other structures. Report FEMA 303. U.S. Federal Emergency Management Agency, Washington

  • Nishenko SP (1989) Circumpacific seismic potential 1989–1999. Open-File report 89–86, U.S. Geological Survey, p 126

  • Pacheco JF, Sykes LR, Scholz CH (1993) Nature of seismic coupling along simple plate boundaries of the subduction type. J Geophys Res 98(B8):14133–14159

    Article  Google Scholar 

  • Parrales R (2006) Dynamic soil properties of the soils in the area of Managua, Nicaragua. Licentiate Thesis in Engineering Geology. Lund University, Lund

  • Parrales RM, Picado MJ (2001) Análisis de espectros de respuesta en el área de la ciudad de Managua. Graduate dissertation, Faculty of Construction Technology, National Engineering University, Managua, Nicaragua

  • Protti M, Gündel F, McNally K (1994) The geometry of the Wadati–Benioff zone under Southern Central America and its tectonic significance: results from a high-resolution local seismographic network. Phys Earth Planet In 84(1–4):271–287

    Article  Google Scholar 

  • Protti M, McNally K, Pacheco J, González V, Montero C, Segura J, Brenes J, Barboza V, Malavassi E, Gündel F, Simila G, Rojas D, Velasco A, Mata A, Schillinger W (1995) The March 25, 1990 (Mw = 7.0, ML = 6.8), earthquake at the entrance of the Nicoya Gulf, Costa Rica: its prior activity, foreshocks, aftershocks, and triggered seismicity. J Geophys Res 100(B10):20345–20358

    Article  Google Scholar 

  • Protti M, Güendel F, Malavassi E (2001) Evaluación del potencial sísmico de la Península de Nicoya, Heredia, Costa Rica, Editorial Fundación UNA, p 144

  • Rodríguez VHS, Midorikawa S (2003) Comparison of spectral ratio techniques for estimation of site effects using microtremor data and earthquake motions recorded at the surface and in boreholes. Earthquake Eng Struct Dynam 32(11):1691–1714

    Article  Google Scholar 

  • Rolo R, Bommer JJ, Houghton BF, Vallance JW, Berdousis P, Mavrommati C, Murphy W (2004) Geologic and engineering characterization of Tierra Blanca pyroclastic ash deposits. In: Rose WI, Bommer JJ, López DL, Carr MJ, Major JJ (eds) Special paper 375: natural hazards in El Salvador. Geological Society of America, Boulder, pp 55–68

    Chapter  Google Scholar 

  • Rymer MJ (1987) The San Salvador earthquake of October 10, 1986—geologic aspects. Earthquake Spectra 3(3):435–463

    Article  Google Scholar 

  • Salazar W, Sardina V, de Cortina J (2007) A hybrid inversion technique for the evaluation of source, path, and site effects employing S-wave spectra for subduction and upper-crustal earthquakes in El Salvador. Bull Seismol Soc Am 97(1B):208–221

    Article  Google Scholar 

  • Satake K (1995) Linear and nonlinear computations of the 1992 Nicaragua earthquake tsunami. Pure Appl Geophys 144(3–4):455–470

    Article  Google Scholar 

  • Schmidt-Thomé M (1975) The geology in the San Salvador area (El Salvador, Central America), a basis for city development and planning. Geol Jahrbuch 13:207–228

    Google Scholar 

  • Schmidt V, Dahle A, Bungum H (1997) Costa Rican spectral strong motion attenuation. Technical report, NORSAR, Norway

  • Segura F, Strauch W, Taylor W, Santana G, Dahle A, Bungum H (1994) Digital strong motion data from Nicaragua. Technical report 2:15. NORSAR and University of Bergen, Norway

  • Skarlatoudis A, Papazachos C, Margaris B (2003) Determination of noise spectra from strong motion data recorded in Greece. J Seismol 7(4):533–540

    Article  Google Scholar 

  • Strasser FO, Arango MC, Bommer JJ (2010) Scaling of the source dimensions of interface and intraslab subduction-zone earthquakes with moment magnitude. Seismol Res Lett 81(6):941–950

    Article  Google Scholar 

  • Syracuse EM, Abers GA, Fischer K, MacKenzie L, Rychert C, Protti M, González V, Strauch W (2008) Seismic tomography and earthquake locations in the Nicaraguan and Costa Rican upper mantle. Geochem Geophy Geosyst 9(7):Q07S08

    Article  Google Scholar 

  • Taylor W, Climent A, Santos P, Ciudad Real M, Santana G, Villagran M, Strauch W, Segura F, Dahle A, Bungum H (1994) Digital strong motion data from Central America. Technical report 2:16, NORSAR and University of Bergen, Norway

  • Tichelaar BW, Ruff LJ (1993) Depth of seismic coupling along subduction zones. J Geophys Res 98(B2):2017–2037

    Article  Google Scholar 

  • Vallée M, Bouchon M, Schwartz SY (2003) The 13 January 2001 El Salvador earthquake: a multidata analysis. J Geophys Res 108(B4):B001889

    Article  Google Scholar 

  • Warren LM, Langstaff ML, Silver PJ (2008) Fault plane orientations of intermediate-depth earthquakes in the Middle America Trench. J Geophys Res 113:B01304

    Article  Google Scholar 

  • Wells DL, Coppersmith KJ (1994) New empirical relationships among magnitude, rupture length, rupture width, rupture area, and surface displacement. Bull Seismol Soc Am 84(4):974–1002

    Google Scholar 

  • Youngs RR, Chiou SJ, Silva WJ, Humphrey JR (1997) Strong ground motion attenuation relationships for subduction zone earthquakes. Seismol Res Lett 68(1):58–77

    Google Scholar 

  • Zaré M, Bard P-Y, Ghafory-Ashtiany M (1999) Site characterizations for the Iranian strong motion network. Soil Dyn Earthquake Eng 18(2):101–123

    Article  Google Scholar 

  • Zhao J, Irikura K, Zhang J, Fukushima Y, Somerville P, Asano A, Ohno Y, Oouchi T, Takahashi T, Ogawa H (2006) An empirical site-classification method for strong-motion stations in Japan using H/V response spectral ratio. Bull Seismol Soc Am 96(3):914–925

    Article  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Julian J. Bommer.

Electronic Supplementary Material

Below is the link to the electronic supplementary material.

(xls 53.5 KB)

(xls 268 KB)

Rights and permissions

Reprints and permissions

About this article

Cite this article

Arango, M.C., Strasser, F.O., Bommer, J.J. et al. A strong-motion database from the Central American subduction zone. J Seismol 15, 261–294 (2011). https://doi.org/10.1007/s10950-010-9223-6

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10950-010-9223-6

Keywords

Navigation