1887
Volume 43, Issue 4
  • ISSN: 0812-3985
  • E-ISSN: 1834-7533

Abstract

[

This paper presents the outcome of reconnaissance surveys in metropolitan Manila (Metro Manilla), the Philippines, with the aim of mapping shallow shear-wave velocity structures. Metro Manila is a seismically active and densely populated region that is in need of detailed investigation of the subsurface structures, to assess local site effects in seismic hazard estimation. We conducted microtremor array observations and used the spatial autocorrelation method to estimate the shear-wave profiles at 32 sites in major geological settings in Metro Manila. We applied a hybrid genetic simulated annealing algorithm to invert phase velocity data from the spatial autocorrelation method to generate shear-wave velocity models near the global best-fit solution. The comparison between the inferred shear-wave velocity profiles and PS logging showed good agreement in terms of the fundamental mode of Rayleigh waves and site responses. Then, we utilised the inferred shear-wave velocity profiles to compute the site amplifications with reference to the motion in engineering bedrock. Subsequently, the site amplifications have been grouped, based on NEHRP site classes. The amplification factor has also been compared with the average shear-wave velocity of the upper 30 m at each site, to produce a power-law regression equation that can be used as a starting basis for further site-effects evaluation in the metropolis.

,

Microtremor array observations were conducted in Metro Manila, the Philippines, to estimate the shear-wave velocity profiles at 32 sites. The inferred shear-wave velocity profiles were utilised to compute the site amplifications with reference to the motion in engineering bedrock. Subsequently, the site amplifications were grouped based on NEHRP site classes.

]
Loading

Article metrics loading...

/content/journals/10.1071/EG12031
2012-12-01
2026-01-23
Loading full text...

Full text loading...

References

  1. Abeki, N., Punongbayan, R. S., Garcia, D. C., Narag, I. C., Bautista, B. C., Banganan, E. L., Tabanlar, R. A., Soneja, D. S., Masaki, K., Maeda, N., and Watanabe, K., 1996, Site response evaluation of Metro Manila using microtremor observation: Eleventh World Conference of Earthquake Engineering, No. 1793.
  2. Aki K. 1957 Space and time spectra of stationary stochastic waves, with special reference to microtremors: Bulletin of the Earthquake Research Institute 35 415 456
    [Google Scholar]
  3. Asten, M. W., 2001, The spatial auto-correlation method for phase velocity of microseisms – Another method for characterisation of sedimentary overburden in earthquake codes in the real world: Australian Earthquake Engineering Society, Proceedings of the 2001 Conference, Canberra, Paper 28. Available at http://www.geosci.monash.edu.au/research/cegas
  4. Bureau of Mines and Geo-Sciences (BMGS), 1982, Geology and mineral resources of the Philippines: Vol. 1: Ministry of Natural Resources, Manila, Philippines.
  5. Cassaro, M. A., and Romero, E. M., 1986, The Mexico earthquakes 1985: factors involved and lesson learned: Proceedings of the International Conference, Mexico City, September 1986. American Society of Civil Engineers.
  6. Daligdig, J., and Besana, G. M., 1993, Seismological hazards in Metro Manila: natural disaster prevention and mitigation in Metropolitan Manila. Department of Science and Technology, Philippine Institute of Volcanology and Seismology (DOST-PHIVOLCS), 9–41.
  7. Daligdig, J. A., Punongbayan, R. S., Basana, G. M., and Tungol, N. M., 1997, The Marikina valley fault system: active faulting in eastern Metro Manila: PHIVOLCS Professional Paper, 1, 1–20.
  8. Gervasio F. C. 1968 The geology, structures and landscape development of Manila and suburbs: The Philippine Geologist 22 178 192
    [Google Scholar]
  9. Haskell N. A. 1953 The dispersion of surface waves on multilayered media: Bulletin of the Seismological Society of America 43 17 34
    [Google Scholar]
  10. Haskell N. A. 1960 Crustal reflection of plane SH waves: Journal of Geophysical Research 65 4147 4150 10.1029/JZ065i012p04147
    https://doi.org/10.1029/JZ065i012p04147 [Google Scholar]
  11. Horike M. 1985 Inversion of phase velocity of long-period microtremors to the S-wave velocity structure down to the basement in urbanized areas: Journal of Physics of the Earth 33 59 96 10.4294/jpe1952.33.59
    https://doi.org/10.4294/jpe1952.33.59 [Google Scholar]
  12. Hudson D. E. Housner G. W. 1958 An analysis of strong-motion accelerometer data from the San Francisco earthquake of March 22, 1957: Bulletin of the Seismological Society of America 48 253 268
    [Google Scholar]
  13. Iida M. Yamanaka H. Yamada N. 2005 Wave field estimated by borehole recordings in the reclaimed zone of Tokyo Bay: Bulletin of the Seismological Society of America 95 1101 1119 10.1785/0120040010
    https://doi.org/10.1785/0120040010 [Google Scholar]
  14. Kitsunezaki C. Goto N. Kobayashi Y. Ikawa T. Horike M. Saito T. Kurota T. Yamabe K. Okuzumi K. 1990 Estimation of P- and S-wave velocities in deep soil deposits for evaluating ground vibrations in earthquake: Journal of the Japan Society for Natural Disaster Science 9 1 17
    [Google Scholar]
  15. Kudo K. Kanno T. Okada H. Ozel O. Erdik M. Sasatani T. Higashi S. Takahashi M. Yoshida K. 2002 Site specific issues for strong ground motions during the Kocaeli, Turkey earthquake of August 17, 1999, as inferred from array observations of microtremors and aftershocks: Bulletin of the Seismological Society of America 92 448 465 10.1785/0120000812
    https://doi.org/10.1785/0120000812 [Google Scholar]
  16. Ling, S., Matsushima, T., and Okada, H., 1991, An exploration method using microtremors (6). Determination of effective frequency range in the spatial autocorrelation method: Proceedings of the 85th SEGJ Conference, Society of Exploration Geophysics, Japan, 261–263 (in Japanese).
  17. Lomax A. Snieder R. 1994 Finding sets of acceptable solutions with a genetic algorithm with application to surface wave group dispersion in Europe: Geophysical Research Letters 21 2617 2620 10.1029/94GL02635
    https://doi.org/10.1029/94GL02635 [Google Scholar]
  18. Masaki, K., Saguchi, K., and Banganan, E. L., 2000, Estimation of velocity structure in Marikina Valley, Manila by using microtremor array observation: Proceedings of the International Workshop on the Integration of Data for Seismic Disaster Mitigation in Metro Manila, 63–71.
  19. Matsuda, I., Enomoto, T., Banganan, E. L., and Narag, I. C., 2000, Regional division of Marikina Valley and Coastal Lowland, Metro Manila, on the basis of soil condition: Proceedings of the International Workshop on the Integration of Data for Seismic Disaster Mitigation in Metro Manila, 43–62.
  20. Metro Manila Earthquake Impact Reduction Study (MMEIRS), 2004, MMEIRS Final Report Volume 1 Executive Summary: March 2004. Available at http://www.pdc.org/mmeirs/html/mmeirs-home.jsp (accessed February 2012).
  21. Miyakoshi, K., 1996, A range of wavelengths possible to estimate phase velocities of surface waves in microtremors: Proceedings of the 94th SEGJ Conference, Society of Exploration Geophysics, Japan, 178–182 (in Japanese).
  22. Narag, I. C., Banganan, E. L., Lanuza, A. G., Deocampo, J. B., Lasala, M., Olavere, E., Penarubia, H., Bautista, M. L. P., Bautista, B. C., Garcia, D. C., Vargas, J., Abeki, N., Masaki, K., Enomoto, T., Maeda, N., Yanagawa, K., Maeda, T., Hirano, M., Komuro, S., Okuda, S., Ochiai, T., and Tanzawa, Y., 2000, Microtremor observation of Metropolitan Manila: Proceedings of the International Workshop on the Integration of Data for Seismic Disaster Mitigation in Metro Manila, 73–84.
  23. NEHRP, 2003, NEHRP recommended provisions for seismic regulations for new buildings and other structures (FEMA 450), part 1: Provisions, Building Seismic Safety Council, Washington, D.C.
  24. Nelson A. R. Personius S. F. Rimando R. E. Punongbayan R. S. Tuñgol N. M. Mirabueno H. M. Rasdas A. S. 2000 Multiple large earthquakes in the past 1500 years on a fault in metropolitan Manila, the Philippines: Bulletin of the Seismological Society of America 90 73 85 10.1785/0119990002
    https://doi.org/10.1785/0119990002 [Google Scholar]
  25. Ohmachi, T., and Nakamura, Y., 1992, Local site effects detected by microtremor measurements on the damage due to the 1990 Philippine earthquake: Proceedings Tenth World Conference on Earthquake Engineering, Balkema, Rotterdam, 997–1002.
  26. Okada, H., 2003, The microtremor survey method, Geophysical Monograph series: Society of Exploration Geophysicists.
  27. Okada H. 2006 Theory of efficient array observations of microtremors with special reference to the SPAC method: Exploration Geophysics 37 73 85 10.1071/EG06073
    https://doi.org/10.1071/EG06073 [Google Scholar]
  28. Okada H. Matsushima T. Hidaka E. 1987 Comparison of spatial autocorrelation method and frequency-wavenumber spectral method of estimating the phase velocity of Rayleigh waves in long-period microtremors: Geophysical Bulletin of Hokkaido University, Sapporo, Japan No. 49 53 62 (in Japanese)
    [Google Scholar]
  29. Omote, S., Osawa, Y., Skimmer, I., and Yoshimi, Y., 1969, Philippines: Luzon Earthquake of 02 August 1968: UNESCO, Paris. Summarised report available at http://www.phivolcs.dost.gov.ph/
  30. Rimando R. Knuepfer P. 2006 Neotectonics of the Marikina Valley Fault System (MVFS) and tectonic framework of structures in Northern and Central Luzon, Philippines: Tectonophysics 415 17 38 10.1016/j.tecto.2005.11.009
    https://doi.org/10.1016/j.tecto.2005.11.009 [Google Scholar]
  31. Takekoshi M. Yamanaka H. 2009 Waveform inversion of shallow seismic refraction data using hybrid heuristic search method: Exploration Geophysics 40 99 104 10.1071/EG08113
    https://doi.org/10.1071/EG08113 [Google Scholar]
  32. Tokimatsu K. Shinzawa K. Kuwayama S. 1992 a Use of short-period microtremors for V S profiling: Journal of Geotechnical Engineering, ASCE 118 1544 1588
    [Google Scholar]
  33. Tokimatsu K. Tamura S. Kojima H. 1992 b Effects of multiple modes on Rayleigh wave dispersion characteristics: Journal of Geotechnical Engineering, ASCE 118 1529 1543
    [Google Scholar]
  34. Yamanaka H. 2007 Inversion of surface-wave phase velocity using hybrid heuristic search method: Butsuri Tansa 60 265 275 (in Japanese)10.3124/segj.60.265
    https://doi.org/10.3124/segj.60.265 [Google Scholar]
  35. Yamanaka H. Ishida H. 1996 Application of genetic algorithms to an inversion of surface wave dispersion data: Bulletin of the Seismological Society of America 86 436 444
    [Google Scholar]
  36. Yamanaka H. Takemura M. Ishida H. Niwa M. 1994 Characteristics of long-period microtremors and their applicability in exploration of deep sedimentary layers: Bulletin of the Seismological Society of America 84 1831 1841
    [Google Scholar]
  37. Yamanaka, H., Takezono, M., Ogata, Y., Eto, K., Banganan, E. L., Narag, I. C., Deocampo, J. B., Tiglao, R. B., Garcia, D. C., Bautist, B. C., and Punongbayan, R. S., 2000a, Estimation of S-wave velocity profiles in Metro Manila from long-period microtremor array measurements: Proceedings of the International Workshop on the Integration of Data for Seismic Disaster Mitigation in Metro Manila, 13–29.
  38. Yamanaka, H., Yamada, N., Sato, H., Oikawa, S., Ogata, Y., Kurita, K., Seo, K., and Kinugasa, Y., 2000b, Exploration of basin structure by microtremor array technique for estimation of long-period ground motion: Proceedings of the 12th World Conference on Earthquake Engineering, Paper No. 1484.
  39. Yamanaka, H., Midorikawa, S., Kinugasa, Y., Bautista, B., and Rimando, R., 2002, Estimation of seismic risk in Metro Manila, in T. Omachi, and E. Roman, eds., Metro Manila: in search of a sustainable future: Japan Society for the Promotion of Science (JSPS) Manila Project in collaboration with the University of the Philippines Press, 301–326.
  40. Yamanaka H. Ohtawara K. Grutas R. Tiglao R. Lasala M. Narag I. Bautista B. 2011 Estimation of site amplification in Metropolitan Manila, Philippines, from earthquake ground motion records: Mulli-Tamsa 14 69 79
    [Google Scholar]
/content/journals/10.1071/EG12031
Loading
/content/journals/10.1071/EG12031
Loading

Data & Media loading...

  • Article Type: Research Article
Keyword(s): AVs30; microtremor array observations; shear-wave velocity; site amplifications

Most Cited This Month Most Cited RSS feed

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error