The Simulation of Tsunami against the South Coast of the Korean Peninsula

한반도 남해안에 대한 지진해일 수치실험

  • Kim, Hyun-Seung (Research and Development Institute of Korea Ocean Science & Engineering Corporation) ;
  • Kim, Hyeon-Seong (Research & Development Institute of Geo-Product Data Management) ;
  • Kang, Young-Seung (Research and Development Institute of Korea Ocean Science & Engineering Corporation)
  • 김현승 ((주) 한국해양과학기술 부설연구소) ;
  • 김현성 ((주) 지오피디엠 부설연구소) ;
  • 강영승 ((주) 한국해양과학기술 부설연구소)
  • Published : 2008.10.30

Abstract

The numerical simulation of tsunami against the south coast of the Korean Peninsula has been performed by adopting the standard appropriate grid size and the numerical model has been constructed to include the characteristics of the tsunami propagation applied for the care of the East China Sea. The artificial tsunami has been modelled first and then, it has been used as the boundary condition for the detailed model which showed the south coast of the Korean Peninsula.

Keywords

References

  1. 오임상, 안희수, 추교승, 고창남. (1993). 한국 근해의 해저지진과 지진해일, 한림원
  2. Aida, I. (1969). "Numerical Experiments for the Tsunami Propagation - the 1964 Niigata Tsunami and 1968 Tokachi-oki Tsunami", Bull Earthq. Res. Inst., Vol 47, pp 673-700
  3. Aida, I. (1984). "A Source Models of the 1983 Nihonkai-earthquake Tsunami", Proc. Syrup. Nihonkai Chubu Earthquake Tsunami, JSCE, pp 9-21
  4. Choi, B.H., Pelinovsky, E., Ryabov, I. and Hong, S.J.(2002). "Distribution Functions of Tsunami Wave Heights", Natural Hazards, Vol 25, pp 1-21 https://doi.org/10.1023/A:1013379705323
  5. Imamura, A. (1949). "Homeland Tsunami Chronology Japanese, Zisin", Ser. 2, Vol 2, pp 23-28
  6. Imamura, F. (1994). "Analysis of Coastal Lines by Multi Fractals", FORMA, Society for Science on Form, Vol 9, No 2, pp 83-90
  7. Isozaki, I and Unoki, S. (1964). The Numerical Computation of the Tsunami in Tokyo Bay. Caused by Chilean Earthquake in May 1960, Studies on Oceanogr. Dedicated to Prof. Hidaka in commemoration of his Sixtieth Birthday
  8. Kajiura, K. (1963). "The Leading Wave of a Tsunami", Bull Earthq. Res. Inst, Univ, Tokyo, Vol 41, pp 535-571
  9. Lee, H.J., Imamura, F. and Shuto, N. (1997). "Precision of the Tidal Wave Number Value Calculation Which is Observed to Refraction Phenomenon", JSCE Coastal Engineering Journal, Vol 44, pp 276-280 https://doi.org/10.2208/proce1989.44.276
  10. Linsley, R.K. and Franzini, J.B. (1979). Water Resources Engineering, 3rd Edition, McGraw Hill Kogakukusha, Ltd
  11. Manshinha, L. and Smylie, D.E., (1971). "The Displacement Fields of Inclined Faults", Bull Amer. Seism Soc., Vol 61, No 5, pp 1433-1440
  12. Munk, W.H. and Arthur, R.S. (1952). "Wave Intensity Along a Refracted Rays", Bureau Stand Circ. Vol 521, pp 95-109
  13. Okada, M. (1985). "Response of Some Tide-wells in Japan to Tsunami", Proc. Int. Tsunami Symp., pp 208-213
  14. Shuto, N. (1991). "Numerical Simulation of Tsunami - its Present and Near Future", Natural Hazards, Vol 4, pp 171-191 https://doi.org/10.1007/BF00162786
  15. Ueno, T. (1965). "Numerical Computations for the Chilean Earthquake Tsunami", Oceanogr. Mag., Vol 17, pp 87-94