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The Effect of the Great Barrier Reef on the Propagation of the 2007 Solomon Islands Tsunami Recorded in Northeastern Australia

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Tsunami Science Four Years after the 2004 Indian Ocean Tsunami

Part of the book series: Pageoph Topical Volumes ((PTV))

Abstract

The effect of offshore coral reefs on the impact from a tsunami remains controversial. For example, field surveys after the 2004 Indian Ocean tsunami indicate that the energy of the tsunami was reduced by natural coral reef barriers in Sri Lanka, but there was no indication that coral reefs off Banda Aceh, Indonesia had any effect on the tsunami. In this paper, we investigate whether the Great Barrier Reef (GBR) offshore Queensland, Australia, may have weakened the tsunami impact from the 2007 Solomon Islands earthquake. The fault slip distribution of the 2007 Solomon Islands earthquake was firstly obtained by teleseismic inversion. The tsunami was then propagated to shallow water just offshore the coast by solving the linear shallow water equations using a staggered grid finite-difference method. We used a relatively high resolution (approximately 250 m) bathymetric grid for the region just off the coast containing the reef. The tsunami waveforms recorded at tide gauge stations along the Australian coast were then compared to the results from the tsunami simulation when using both the realistic 250 m resolution bathymetry and with two grids having fictitious bathymetry: One in which the the GBR has been replaced by a smooth interpolation from depths outside the GBR to the coast (the “No GBR” grid), and one in which the GBR has been replaced by a flat plane at a depth equal to the mean water depth of the GBR (the “Average GBR” grid). From the comparison between the synthetic waveforms both with and without the Great Barrier Reef, we found that the Great Barrier Reef significantly weakened the tsunami impact. According to our model, the coral reefs delayed the tsunami arrival time by 5–10 minutes, decreased the amplitude of the first tsunami pulse to half or less, and lengthened the period of the tsunami.

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References

  • Adger, W.N., Hughes, T.P., Folke, C., Carpenter, S.R., and Rockstrom, J. (2005), Social-ecological resilience to coastal disasters, Science 309, 1036–1039.

    Article  Google Scholar 

  • Baba, T., Cummins, P.R., Thio, H.K., and Tsushima, H. (2008), Validation and joint inversion of teleseismic waveforms for earthquake source models using deep ocean bottom pressure records: A case study of the 2006 Kuril megathrust earthquake, Pure Appl. Geophys. this issue.

    Google Scholar 

  • Baba, T., Mleczko, R., Cummins, P.R., Thio, H.K., and Burbidge, D. (2007), Accurate tsunami modelling due to the 2007 Solomon earthquake by using the seismic rupture model and the GA-DBDB2 bathymetric dataset, HYDRO2007 Proceedings, pp. 47–53.

    Google Scholar 

  • Baird, A.H., Campbell, S., Anggoro, A., Ardiwijaya, R., Fadli, N., Herdiana, Y., Kartawijaya, T., Mahyiddin, D., Mukminin, A., and Pardede, S. (2005), Acehnese reefs in the wake of the Asian tsunami, Curr. Biol. 15, 1926–1930.

    Article  Google Scholar 

  • Baptista, A.M., Westerink, J.J., and Turner, P.J. (1989), Tides in the English Channel and Southern North Sea. A Frequency-Domain Analysis Using Model TEA-NL. Advances in Water Resources 12, 166–183.

    Article  Google Scholar 

  • Environmental Protection Agency, Queensland Government (2007), Fact Sheet Solomon Islands tsunami, online at http://www.epa.qld.gov.au/publications/p02118aa.pdf/Solomon_Islands_tsunami.pdf.

    Google Scholar 

  • Fernando, H.J.S., Mcculley, J.S., Mendis, S.G., and Perera, K. (2005), Coral poaching worsens tsunami destruction in Sri Lanka, EOS Trans., AGU 86, 301–304.

    Article  Google Scholar 

  • Ichinose, G., Somerville, P., Thio, H.K., Graves, R., and O’Connell, H. (2007), Rupture process of the 1964 Prince William Sound, Alaska, earthquake from the combined inversion of seismic, tsunami and geodetic data, J. Geophys. Res. 112, doi:10.1029/2006JB004728.

    Google Scholar 

  • Kraines, S.B., Yanagi, T., Isobe, M., and Komiyama, H. (1998), Wind-wave driven circulation on the coral reef at Bora Bay, Miyako Island, Coral Reefs 17, 133–143.

    Article  Google Scholar 

  • Kunkel, C.M., Hallberg, R.W., Hallberg, W., and Oppenheimer, M. (2006), Coral reefs reduce tsunami impact in model simulations, Geophys. Res. Lett. 33, L23612, doi:10.1029/2006GL027892.

    Article  Google Scholar 

  • Miura, S., Suyehiro, K., Shinohara, M., Takahashi, N., Araki, E., and Taira, A. (2004), Seismological structure and implications of collision between the Ontong Java Plateau and Solomon Island Arc from ocean bottom seismometer-airgun data, Tectonophysics 389, 191–220.

    Article  Google Scholar 

  • Okada, Y. (1992), Internal deformation due to shear and tensile faults in a half space, Bull. Seismol. Soc. Am. 82, 1018–1040.

    Google Scholar 

  • Sánchez, A. and Cheung, K.F. (2007), Tsunami forecast using an adaptive inverse algorithm for the Peru-Chile source region, Geophys. Res. Lett. 34, L13605, doi:10.1029/2007GL030158.

    Article  Google Scholar 

  • Satake, K. Tsunamis, in International Handbook of Earthquake and Engineering Seismology, (eds. Lee, W.H.K., Kanamori, H., Jennings, P.C., and Kisslinger, C.) (Academic Press 2002) 81A, pp. 437–451.

    Google Scholar 

  • Thio, H.K., Graves, R.W., Somerville, P.G., Sato, T., and Ishii, T. (2004), A multiple time window rupture model for the 1999 Chi-Chi earthquake from a combined inversion of teleseismic, surface wave, strong motion and GPS data, J. Geophys. Res. 109, doi:10.1029/2002JB002381.

    Google Scholar 

  • Wessel, P., Smith, W.H.F. (1998), New, improved version of generic mapping tools released, EOS Trans., AGU 79, 579.

    Article  Google Scholar 

  • Yoneshima, S., Mochizuki, K., Araki, E., Hino, R., Shinohara, M., and Suyehiro, K. (2005), Subduction of the Woodlark Basin at New Britain Trench, Solomon Islands region, Tectonophysics 397, 225–239.

    Article  Google Scholar 

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© 2008 Birkhäuser Verlag, Basel

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Baba, T., Mleczko, R., Burbidge, D., Cummins, P.R., Thio, H.K. (2008). The Effect of the Great Barrier Reef on the Propagation of the 2007 Solomon Islands Tsunami Recorded in Northeastern Australia. In: Cummins, P.R., Satake, K., Kong, L.S.L. (eds) Tsunami Science Four Years after the 2004 Indian Ocean Tsunami. Pageoph Topical Volumes. Birkhäuser Basel. https://doi.org/10.1007/978-3-0346-0057-6_3

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