Intermittent but Rapid Changes to Coastal Landscapes: The Tsunami and El Niño Wave-Formed Sea Arch at Laie Point, Oahu, Hawaii, U.S.A.
Abstract
:1. Introduction
1.1. Overview
1.2. Geographical and Geological Setting
1.3. Kukuiho’olua Island in Human History
2. Materials and Methods
3. Results
3.1. 1946 Tsunami
3.2. 2015–2016 El Niño-Generated Waves
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Gehrels, R. Sea-level changes since the Last Glacial Maximum: An appraisal of the IPCC Fourth Assessment Report. J. Quat. Sci. 2009, 25, 26–38. [Google Scholar] [CrossRef]
- Gehrels, W.R.; Woodworth, P.L. When did modern rates of sea-level rise start? Glob. Planet. Chang. 2013, 100, 263–277. [Google Scholar] [CrossRef]
- Lokier, S.W.; Court, W.M.; Onuma, T.; Paul, A. Implications of sea-level rise in a modern carbonate ramp setting. Geomorphology 2018, 304, 64–73. [Google Scholar] [CrossRef]
- Felton, E. Sedimentology of rocky shorelines: 1. A review of the problem, with analytical methods, and insights gained from the Hulopoe Gravel and the modern rocky shoreline of Lanai, Hawaii. Sediment. Geol. 2002, 152, 221–245. [Google Scholar] [CrossRef]
- Sherrod, D.R.; Sinton, J.M.; Watkins, S.E.; Brunt, K.M. Geologic Map of the State of Hawaii; Open-File Report; U.S. Geological Survey: Hilo, HI, USA, 2007. [Google Scholar] [CrossRef] [Green Version]
- Macdonald, G.A.; Abbott, A.T.; Peterson, F.L. Volcanoes in the Sea: The Geology of Hawaii, 2nd ed.; University of Hawaii Press: Honolulu, HI, USA, 1983; pp. 267–275. [Google Scholar]
- Zhao, D.; Ochi, F.; Takahashi, E.; Lipman, P.W.; Garcia, M.O.; Naka, J.; Aramaki, S. Seismic images of hotspots and mantle plumes. In Sea Ice; American Geophysical Union (AGU): Washington, DC, USA, 2002; Volume 128, pp. 349–364. [Google Scholar]
- Jackson, E.D.; Silver, E.A.; Dalrymple, G.B. Hawaiian-Emperor Chain and Its Relation to Cenozoic Circumpacific Tectonics. GSA Bull. 1972, 83, 601–618. [Google Scholar] [CrossRef]
- Clague, D.A.; Dalrymple, G.B.; Moberly, R. Petrography and K-Ar Ages of Dredged Volcanic Rocks from the Western Hawaiian Ridge and the Southern Emperor Seamount Chain. GSA Bull. 1975, 86, 991–998. [Google Scholar] [CrossRef]
- Jackson, E.; Koisumi, I.; Dalrymple, G.; Clague, D.; Kirkpatrick, J.; Greene, H. Introduction and Summary of Results from DSDP Leg 55, the Hawaiian-Emperor Hot-Spot Experiment. In Initial Reports of the Deep Sea Drilling Project; International Ocean Discovery Program (IODP): College Station, TX, USA, 1980; Volume 55, pp. 5–31. [Google Scholar]
- Cox, R. Hawaiian volcanic propagation and Hawaiian swell asymmetry: Evidence of northwestward flow of the deep upper mantle. Tectonophysics 1999, 310, 69–79. [Google Scholar] [CrossRef]
- Sinton, J.M.; Eason, D.; Tardona, M.; Pyle, D.; Van Der Zander, I.; Guillou, H.; Clague, D.A.; Mahoney, J.J. Ka’ena Volcano—A precursor volcano of the island of O’ahu, Hawai’i. GSA Bull. 2014, 126, 1219–1244. [Google Scholar] [CrossRef]
- Sinton, J.M.; Eason, D.E. Growth history of Kaena Volcano, the isolated, dominantly submarine, precursor volcano to Oahu, Hawaii. In Proceedings of the American Geophysical Union Fall Meeting 2014, San Francisco, CA, USA, 15–19 December 2014. [Google Scholar]
- Guillou, H.; Sinton, J.; Laj, C.; Kissel, C.; Szeremeta, N. New K–Ar ages of shield lavas from Waianae Volcano, Oahu, Hawaiian Archipelago. J. Volcanol. Geotherm. Res. 2000, 96, 229–242. [Google Scholar] [CrossRef]
- Yamasaki, S.; Sawada, R.; Ozawa, A.; Tagami, T.; Watanabe, Y.; Takahashi, E. Unspiked K–Ar dating of Koolau lavas, Hawaii: Evaluation of the influence of weathering/alteration on age determinations. Chem. Geol. 2011, 287, 41–53. [Google Scholar] [CrossRef]
- Hitchcock, C.H.; Dall, W.H. Geology of Oahu. GSA Bull. 1900, 11, 15–60. [Google Scholar] [CrossRef]
- Pollock, J.B. Fringing and fossil coral reefs of Oahu. Bernice P. Bish. Mus. Bull. 1928, 55, 1–56. [Google Scholar]
- Stearns, H.T. Pleistocene shore lines on the islands of Oahu and Maui, Hawaii. GSA Bull. 1935, 46, 1927–1956. [Google Scholar] [CrossRef]
- Stearns, H.T. Geology of the State of Hawaii, 2nd ed.; Pacific Books: Palo Alto, CA, USA, 1985; p. 335. [Google Scholar]
- Smith, J.R.; Wessel, P. Isostatic Consequences of Giant Landslides on the Hawaiian Ridge. Pure Appl. Geophys. PAGEOPH 2000, 157, 1097–1114. [Google Scholar] [CrossRef]
- Moore, J.G.; Clague, D.A.; Takahashi, E.; Lipman, P.W.; Garcia, M.O.; Naka, J.; Aramaki, S. Mapping the Nuuanu and Wailau landslides in Hawaii. Sea Ice 2002, 128, 223–244. [Google Scholar] [CrossRef]
- Yokose, H.; Takahashi, E.; Lipman, P.W.; Garcia, M.O.; Naka, J.; Aramaki, S. Landslides on the windward flanks of Oahu and Molokai, Hawaii: Shinkai 6500 submersible investigations. In Sea Ice; American Geophysical Union (AGU): Washington, DC, USA, 2002; Volume 128, pp. 245–261. [Google Scholar]
- Lum, D.; Stearns, H.T. Pleistocene Stratigraphy and Eustatic History Based on Cores at Waimanalo, Oahu, Hawaii. GSA Bull. 1970, 81, 1–16. [Google Scholar] [CrossRef]
- Snow, P.; Stearns, H.T. Geology of the State of Hawaii and Road Guide to Points of Geologic Interest in the Hawaiian Islands. Geogr. J. 1967, 133, 236. [Google Scholar] [CrossRef]
- Macdonald, G.A.; Kyselka, W. Anatomy of an Island: A Geological History of Oahu; Bishop Museum Press: Honolulu, HI, USA, 1967; pp. 29–31. [Google Scholar]
- Stearns, H.T. Geologic Map and Guide of the Island of Oahu, Hawaii; Hawaii Division of Hydrography: Honolulu, HI, USA, 1939. [Google Scholar]
- Rice, W.H. Laniloa—The Mo’o: A Legend of Oahu, in Hawaiian Legends. Bernice P. Bish. Mus. Bull. 1923, 3, 112. [Google Scholar]
- Britsch, R.L. Moramona: The Mormons in Hawai’i; The Institute for Polynesian Studies: Laie, HI, USA, 1989; p. 240. [Google Scholar]
- Tides and Currents. Available online: https://tidesandcurrents.noaa.gov/ (accessed on 18 May 2017).
- ESRL Sunrise/Sunset Calculator. Available online: https://www.esrl.noaa.gov/gmd/grad/solcalc/sunrise.html (accessed on 10 February 2021).
- Jaggar, T.A. The Great Tidal Wave of 1946. Nat. Hist. 1946, 55, 262–268. [Google Scholar]
- Macdonald, G.A.; Shepard, F.P.; Cox, D.C. The tsunami of April 1, 1946 in the Hawaiian Islands. Pac. Sci. 1947, 1, 21–37. [Google Scholar]
- Shepard, F.P.; Macdonald, G.A.; Cox, D.C. The tsunami of April 1, 1946. Bull. Scripps Inst. Oceanogr. 1950, 5, 391–470. [Google Scholar]
- Johnson, J.M.; Satake, K. Estimation of seismic moment and slip distribution of the April 1, 1946, Aleutian tsunami earthquake. J. Geophys. Res. Space Phys. 1997, 102, 11765–11774. [Google Scholar] [CrossRef]
- Okal, E.A.; Synolakis, C.E.; Fryer, G.J.; Heinrich, P.; Borrero, J.C.; Ruscher, C.; Arcas, D.; Guille, G.; Rousseau, D. A Field Survey of the 1946 Aleutian Tsunami in the Far Field. Seism. Res. Lett. 2002, 73, 490–503. [Google Scholar] [CrossRef]
- Fryer, G.J.; Watts, P.; Pratson, L.F. Source of the great tsunami of 1 April 1946: A landslide in the upper Aleutian forearc. Mar. Geol. 2004, 203, 201–218. [Google Scholar] [CrossRef]
- López, A.M.; Okal, E.A. A seismological reassessment of the source of the 1946 Aleutian ‘tsunami’ earthquake. Geophys. J. Int. 2006, 165, 835–849. [Google Scholar] [CrossRef]
- Von Huene, R.; Kirby, S.; Miller, J.; Dartnell, P. The destructive 1946 Unimak near-field tsunami: New evidence for a submarine slide source from reprocessed marine geophysical data. Geophys. Res. Lett. 2014, 41, 6811–6818. [Google Scholar] [CrossRef]
- Dudley, W.; Stone, C.S. The Tsunami of 1946 and 1960 and the Devastation of Hilo Town; The Donning Company: Virginia Beach, VA, USA, 2000; p. 5. [Google Scholar]
- National Data Buoy Center. Available online: https://www.ndbc.noaa.gov/ (accessed on 18 May 2017).
- Di Liberto, T. Huge Waves Mean it’s Time to Surf in Hawaii. 4 March 2016. Available online: https://www.climate.gov/news-features/event-tracker/huge-waves-means-it%E2%80%99s-time-surf-hawai%E2%80%99i (accessed on 18 May 2017).
- Shepard, P.P.; MacDonald, G.A.; Cox, D.C. Recent Tsunami in the Hawaiian Islands. Bull. Geol. Soc. Am. 1946, 57, 1230. [Google Scholar]
- Felton, E.; Crook, K.A. Evaluating the impacts of huge waves on rocky shorelines: An essay review of the book ‘Tsunami—The Underrated Hazard’. Mar. Geol. 2003, 197, 1–12. [Google Scholar] [CrossRef]
- Zhao, X.; Chen, Y.; Huang, Z.; Gao, Y. A numerical study of tsunami wave run-up and impact on coastal cliffs using a CIP-based model. Nat. Hazards Earth Syst. Sci. 2017, 17, 641–655. [Google Scholar] [CrossRef] [Green Version]
- Shen, S. Geomorphological and Tectonic Controls on Coastal Erosion, Huatung, Eastern Taiwan. Ph.D. Thesis, University of London, London, UK, 2000. [Google Scholar]
- Limber, P.W. Beach and Sea Cliff Dynamics as a Driver of Rocky Coastline Evolution. Ph.D. Thesis, Earth and Ocean Sciences, Duke University Graduate School, Durham, NC, USA, 2012. [Google Scholar]
- Climate Prediction Center. Monthly Atmospheric and SST Indices. Available online: https://www.cpc.ncep.noaa.gov/data/indices/ (accessed on 17 May 2017).
- Xue, Y.; Kumar, A. Evolution of the 2015/16 El Niño and historical perspective since 1979. Sci. China Earth Sci. 2017, 60, 1572–1588. [Google Scholar] [CrossRef] [Green Version]
- Lian, T.; Chen, D.; Tang, Y. Genesis of the 2014–2016 El Niño events. Sci. China Earth Sci. 2017, 60, 1589–1600. [Google Scholar] [CrossRef]
- PODAAC. Waves and Satellites: Effect of El Niño on Big Wave Surfing. Available online: https://podaac.jpl.nasa.gov/OceanEvents/2016_01_25_WavesSatellites_ElNino (accessed on 17 May 2017).
Date (2016) | Time (LST) | Wave Height (m) | Estimated Tide (MSL) |
---|---|---|---|
24 February | 21:00 | 3.66 | −0.23 |
24 February | 22:00 | 3.49 | −0.24 |
24 February | 23:00 | 3.86 | −0.18 |
25 February | 00:00 | 4.06 | −0.08 |
25 February | 01:00 | 4.36 | 0.04 |
25 February | 02:00 | 4.66 | 0.16 |
25 February | 03:00 | 5.49 | 0.25 |
25 February * | 04:00 | 5.57 | 0.28 |
25 February | 05:00 | 5.12 | 0.25 |
25 February | 06:00 | 6.12 | 0.17 |
25 February | 07:00 | 5.77 | 0.05 |
25 February | 08:00 | 5.52 | −0.07 |
25 February | 09:00 | 6.37 | −0.16 |
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Jordan, B.R. Intermittent but Rapid Changes to Coastal Landscapes: The Tsunami and El Niño Wave-Formed Sea Arch at Laie Point, Oahu, Hawaii, U.S.A. Geosciences 2021, 11, 147. https://doi.org/10.3390/geosciences11030147
Jordan BR. Intermittent but Rapid Changes to Coastal Landscapes: The Tsunami and El Niño Wave-Formed Sea Arch at Laie Point, Oahu, Hawaii, U.S.A. Geosciences. 2021; 11(3):147. https://doi.org/10.3390/geosciences11030147
Chicago/Turabian StyleJordan, Benjamin R. 2021. "Intermittent but Rapid Changes to Coastal Landscapes: The Tsunami and El Niño Wave-Formed Sea Arch at Laie Point, Oahu, Hawaii, U.S.A." Geosciences 11, no. 3: 147. https://doi.org/10.3390/geosciences11030147
APA StyleJordan, B. R. (2021). Intermittent but Rapid Changes to Coastal Landscapes: The Tsunami and El Niño Wave-Formed Sea Arch at Laie Point, Oahu, Hawaii, U.S.A. Geosciences, 11(3), 147. https://doi.org/10.3390/geosciences11030147