Journal of Seismology

, Volume 10, Issue 4, pp 459–477 | Cite as

The earthquake of 250 a.d. in Augusta Raurica, A real event with a 3D site-effect?

  • Donat Fäh
  • Sibylle Steimen
  • Ivo Oprsal
  • Johannes Ripperger
  • Jochen Wössner
  • Regula Schatzmann
  • Philipp Kästli
  • Ina Spottke
  • Peter Huggenberger
Article

Abstract

The Roman city Augusta Raurica is located East of Basel, Switzerland. One important topic of the city’s history concerns the hypothesis of an earthquake striking the city in the middle of the third century a.d. This idea had been formulated according to archaeological features and findings, but had not been tested so far. A selection of the archaeological features were reviewed and dated in order to test the hypothesis of a single event. However, archaeological investigations do not draw a conclusive picture; it could not be proven that all features of possible destruction date to the same event. Detailed seismological investigations were performed. These included geological and geotechnical mapping of the unconsolidated sediments. Important parameters such as the thickness and composition of the unconsolidated sediments, the terrain topography and the topography of the bedrock surface were mapped. Ambient vibration H/V measurements provided the fundamental frequency of resonance for the unconsolidated sediments. The velocity of shear waves traveling through sediments is the controlling parameter for amplification of seismic waves. This material property is estimated using the relation between the ellipticity of the fundamental mode Rayleigh wave and the H/V curve. From all information we compiled a three-dimensional model of the surface geology. This model is used to simulate earthquake ground motion and amplification effects in the city, and to map the variability of the amplification. In the part of the city where possible earthquake damage was recognized, amplification occurs in the frequency band of building resonance (2–8 Hz). In the other part of the city amplification occurs much above the building’s resonance. From 1D modelling we estimate a difference in spectral amplification of about a factor of 2.5 to 3 between the two parts of the city. This corresponds approximately to a difference in macroseismic intensity of one unit. 3D modelling showed a large variability of ground motion within very close distance in the part of the city where possible earthquake damage was recognized. The maximum amplification reaches values up to a factor of nine, which is due to 3D effects and the choice of using vertically incident waves. Finally, all paleoseismological findings in the area of Basel were reviewed in order to find indications of a large event in the time-period of interest. Paleoseismological findings provide no hints to a large earthquake in the third century. If we assume that an earthquake caused at least part of the identified damage in Augusta Raurica, we have to assign to this event a magnitude Mw of about 6.0 or even lower, that is much smaller than the value of 6.9 that is actually in the Swiss earthquake catalogue. The earthquake source of this event must then be very close to the site of Augusta Raurica and a strong site-effect occurred in one part of the city.

Key words

archaeo-seismology earthquake site-effects velocity structure seismic ground motion modelling Augusta Raurica Switzerland 

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References

  1. Becker A, Davenport CA, Giardini D (2002) Paleoseismicity studies on end-Pleistocene and Holocene lake deposits around Basle, Switzerland. Geophys J Int 149:659–778CrossRefGoogle Scholar
  2. Becker A, Ferry M, Monecke K, Schnellmann M, Giardini D (2004) Multiarchive paleoseismic record of late Pleistocene and Holocene strong earthquakes in Switzerland. Tectonophysics 400:153–177CrossRefGoogle Scholar
  3. Bender H (1975) Archäologische Untersuchungen zur Ausgrabung Augst-Kurzenbettli. Ein Beitrag zur Erforschung der römischen Rasthäuser. Antiqua 4 (Frauenfeld 1975) Taf. 1, 1Google Scholar
  4. Bouchon M (1981) A simple method to calculate Green’s functions for elastic layered media. Bull Seismol Soc Am 71:959–971Google Scholar
  5. Coutant O (1989) Programme de simulation numerique AXITRA. Rapport LGIT, Universite Joseph Fourier, Grenoble, FranceGoogle Scholar
  6. Fäh D, Kind F, Giardini D (2001) A theoretical investigation of average H/V ratios. Geophys J Int 145:535–549CrossRefGoogle Scholar
  7. Fäh D, Giardini D, Bay F, Bernardi F, Braunmiller J, Deichmann N, Furrer M, Gantner L, Gisler M, Isenegger D, Jimenez MJ, Kästli P, Koglin R, Masciadri V, Rutz M, Scheidegger C, Schibler R, Schorlemmer D, Schwarz-Zanetti G, Steimen S, Sellami S, Wiemer S, Wössner J (2003a) Earthquake catalogue of Switzerland (ECOS) and the related macroseismic database. Eclogae Geol Helv 96:219–236Google Scholar
  8. Fäh D, Kind F, Giardini D (2003b) Inversion of local S-wave velocity structures from average H/V ratios, and their use for the estimation of site-effects. J Seismol 7:449–467CrossRefGoogle Scholar
  9. Ferry M, Meghraoui M, Delouis B, Giardini D (2003) Evidence for Holocene paleoseismicity along the Basel–Rheinach active normal fault (Switzerland): a seismic source for the 1356 earthquake in the Upper Rhine graben. Geophys J Int 160(2):554–572CrossRefGoogle Scholar
  10. Florsch N, Fäh D, Suhadolc P, Panza GF (1991) Complete synthetic seismograms for high frequency multimode SH-waves. Pure Appl Geophys 136:529–560CrossRefGoogle Scholar
  11. Kind F (2002) Development of microzonation methods: application to dissertation no. 14548. ETH Zurich, 2002, Basle, SwitzerlandGoogle Scholar
  12. Meghraoui M, Delouis B, Ferry M, Giardini D, Huggenberger P, Spottke I, Granet M (2001) Active normal faulting in the Upper Rhine graben and paleoseismic identification of the 1356 Basel earthquake. Science 293:2070–2073CrossRefGoogle Scholar
  13. Opršal I, Brokešová J, Fäh D, Giardini D (2002) 3D hybrid ray-FD and DWN-FD seismic modeling for simple models containing complex local structures. Stud Geophys Geod 46:711–730CrossRefGoogle Scholar
  14. Opršal I, Zahradník J, Serpetsidaki A, Tselenits G-A (2004) 3D hybrid simulation of the source and site effects during the 1999 Athens earthquake. In: Proc. of 13th world conference on earthquake engineering, Vancouver, British Columbia, Canada, 1–6 August 2004, Paper no. 3337Google Scholar
  15. Opršal I, Fäh D, Mai M, Giardini D (2005) Deterministic earthquake scenario for the Basel area – simulating strong motion and site effects for Basel, Switzerland. J Geophys Res 110, B04305, http://dx.doi.org/10.1029/2004JB003188
  16. Panza GF (1985) Synthetic seismograms: The Rayleigh waves modal summation. J Geophys 58:125–145Google Scholar
  17. Panza GF, Suhadolc P (1987) Complete strong motion synthetics. In: Bolt BA (ed) Seismic strong motion synthetics. Computational techniques, vol 4. Academic, Orlando, pp 153–204Google Scholar
  18. Ripperger J, Fäh D (2003) Records of earthquakes, battles, and reconstructions in Augusta Raurica: an archeological and seismological research project. Second-year report, Schweizerischer Erdbebendienst ETH Zürich, 11 Nov 2003Google Scholar
  19. Schibler J, und Furger AR (1988) Die Tierknochenfunde aus Augusta Raurica (Grabungen 1955–1974). Forsch. Augst 9 (Augst 1988), Abb. 122Google Scholar
  20. Spottke I (2002) Widerstandsmesssungen im Gebiet der Römerstadt Augusta Raurica. Interner Bericht, Angewandte und Umweltgeologie Universität Basel, 6.5.2002Google Scholar
  21. Wössner J (2002) Records of earthquakes, battles and reconstructions in Augusta Raurica: an archaeological and seismological research project – Zwischenbericht, Internal Report of the Swiss Seismological Service, ETH Zurich, 2002Google Scholar
  22. Zahradník J, Tselentis G-A (2002) Modeling strong-motion accelerograms by PEXT method, application to the Athens 1999 earthquake, In Proc. of XXVIII General Assembly of the European Seismological Commission, Genoa, 1–6 Sep. 2002 (CD-ROM), or http://www.seis30.karlov.mff.cuni.cz

Copyright information

© Springer Science+Business Media, Inc. 2006

Authors and Affiliations

  • Donat Fäh
    • 1
  • Sibylle Steimen
    • 1
  • Ivo Oprsal
    • 1
  • Johannes Ripperger
    • 1
  • Jochen Wössner
    • 1
  • Regula Schatzmann
    • 2
  • Philipp Kästli
    • 1
  • Ina Spottke
    • 3
  • Peter Huggenberger
    • 3
  1. 1.Swiss Seismological ServiceZürichSwitzerland
  2. 2.Roman Museum of Augusta RauricaAugusta RauricaSwitzerland
  3. 3.Earth SciencesUniversity of BaselBaselSwitzerland

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