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Late Quaternary Chronology and Stratigraphy of Twelve Sites On Kaua‘i

Published online by Cambridge University Press:  18 July 2016

David A Burney*
Affiliation:
Department of Biological Sciences, Fordham University, Bronx, New York 10458, USA. Email: [email protected].
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Abstract

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Twelve new sites on Kaua‘i provide an island-wide view of late Quaternary (near time) environments on the oldest of the major Hawaiian Islands. Radiocarbon-dated lithologies are compared for estuarine sites on windward and leeward coasts, interior peat bogs ranging from 169 to 1220 m in elevation, prehistoric fishponds, and a sinkhole paleolake in the Maha‘ulepu cave system. Terrestrial sedimentation begins in many coastal sites about 6000 cal BP, as sea level approached modern levels. Prehuman sedimentation rates were quite low in all these sites, generally <2 mm/yr, although coastal sites in the late Holocene were subject to major episodic sediment influx from extreme events, including tsunamis, hurricanes, and floods. Interior sites are generally older, having accumulated humic clay and peat layers at least since the late Pleistocene. Since the arrival of humans less than two millennia ago, sedimentation rates have increased in some coastal sites, and further local increases (as much as two orders of magnitude) have occurred since European arrival. Evidence from sites containing fossils of extinct terrestrial snails is consistent with the hypothesis that human-caused extinctions have proceeded in three phases, corresponding to losses (generally the largest species) occurring soon after the arrival of the first humans, followed by a second wave of extinction in late prehistoric times, and a third after European colonization. Dating of sediments from fishponds constructed or enhanced by prehistoric Polynesians suggests that this early form of aquaculture was initiated on Kaua‘i by about 830 ± 50 BP. The most elaborate example of fishpond construction in the Hawaiian Islands, the Alekoko or Menehune fishpond on Kaua‘i's southeast coast, was probably undertaken by 580 ± 30 BP.

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Articles
Copyright
Copyright © 2002 by the Arizona Board of Regents on behalf of the University of Arizona 

References

Armstrong, RW, editor. 1983. Atlas of Hawaii. Second edition.Google Scholar
Athens, JS. 1997. Hawaiian native lowland vegetation in prehistory. In: Kirch, PV, Hunt, TL, editors. Historical ecology in the Pacific Islands. New Haven, Connecticut: Yale University Press. p 248–70.Google Scholar
Beggerly, PEP. 1990. Kahana Valley, Hawaii, a geomorphic artifact. Ph.D. thesis. University of Hawaii. Honolulu.Google Scholar
Burney, DA, DeCandido, RV, Burney, LP, Kostel-Hughes, FN, Stafford, TW Jr., James, HF. 1995. A Holocene record of climate change, fire ecology, and human activity from montane Flat Top Bog, Maui. Journal of Paleolimnology 13:209–17.Google Scholar
Ching, FKW, Griffin, PB, Kikuchi, WK, Albrecht, WA, Belshé, JC, Stauder, C. 1973. The archaeology of Puna, Kaua'i. Archaeological Research Center Hawaii. 123 p.Google Scholar
Christensen, C. 1992. Kauai's native land shells. Honolulu: Fisher.Google Scholar
Cooke, CM. 1931. The land snail genus Carelia. Bishop Museum Bulletin 85. Honolulu: Bishop Museum Press.Google Scholar
Cooke, CM, Kondo, Y. 1960. Revision of Tornatellinidae and Achatinellidae (Gastropoda, Pulmonata). Bishop Museum Bulletin 221. Honolulu: Bishop Museum Press.Google Scholar
Dixon, B, Soldo, D, Christensen, CC. 1997. Radiocarbon dating land snails and Polynesian land use on the island of Kaua'i, Hawai'i. Hawaiian Archaeology 6:5262.Google Scholar
Gavenda, RT. 1992. Hawaiian Quaternary paleoenvironments: a review of geological, pedological, and botanical evidence. Pacific Science 46:295307.Google Scholar
Goodfriend, G, Hood, D. 1983. Carbon isotope analysis of land snail shells: implications for carbon sources and radiocarbon dating. Radiocarbon 25(2B):810–30.Google Scholar
Hearty, PJ, Kaufman, DS, Olson, SL, James, HF. 2000. Stratigraphy and whole-rock amino acid geochronology of key Holocene and last interglacial carbonate deposits in the Hawaiian Islands. Pacific Science 54:423–42.Google Scholar
Hotchkiss, SC. 1998. Quaternary vegetation and climate of Hawai'i. PhD thesis. University of Minnesota.Google Scholar
Hunt, TL, Holsen, RM. 1991. An early radiocarbon chronology for the Hawaiian Islands: a preliminary analysis. Asian Perspectives 30:147–61.Google Scholar
James, HF, Olson, SL. 1991. Descriptions of thirty-two new species of birds from the Hawaiian Islands: Part II. Passeriformes. Ornithological Monographs 46. Washington D.C.: American Ornithologists' Union.Google Scholar
Jones, AT. 1992. Holocene coral reef on Kaua'i, Hawai'i: evidence for a sea-level high-stand in the central Pacific. In: Fletcher, CH III, Wehmiller, JF, editors. Quaternary coasts of the United States: marine and lacustrine systems. SEPM Special Publication 48:267–71. Tulsa, Oklahoma: Society for Sedimentary Geology.Google Scholar
Kikuchi, WK. 1976. Prehistoric Hawaiian fishponds. Science 193:295–9.Google Scholar
Kirch, PV. 1985. Feathered gods and fishhooks. Honolulu: University of Hawaii Press.Google Scholar
MacDonald, GA, Abbott, AT, Peterson, FL. 1983. Volcanoes in the sea: the geology of Hawaii. Honolulu: University of Hawaii Press.Google Scholar
Olson, SL, James, HF. 1982. Prodromus of the fossil avifauna of the Hawaiian Islands. Smithsonian Contributions to Zoology 365. Washington D.C.: Smithsonian Institution Press.Google Scholar
Olson, SL, James, HF. 1991. Descriptions of thirty-two new species of birds from the Hawaiian Islands: Part I. Non-Passeriformes. Ornithological Monographs 46. Washington D.C.: American Ornithologists' Union.Google Scholar
Olson, SL, James, HF. 1997. Prehistoric status and distribution of the Hawaiian Hawk (Buteo solitarius), with the first fossil record from Kaua'i. Bishop Museum Occasional Papers 49:65–9.Google Scholar
Selling, O. 1948. Studies in Hawaiian pollen statistics: Part III. On the Late Quaternary history of the Hawaiian vegetation. Bernice P. Bishop Museum Special Publication 39. Honolulu.Google Scholar
Stearns, HT. 1978. Quaternary shorelines in the Hawaiian Islands. Bernice P. Bishop Museum Bulletin 237. Honolulu.Google Scholar
Stuiver, M, Braziunas, TF. 1993. Modeling atmospheric 14C ages of marine samples to 10,000 BC. Radiocarbon 35:137–89.Google Scholar
Stuiver, M, Reimer, PJ, Bard, E, Beck, JW, Burr, GS, Hughen, KA, Kromer, B, McCormac, FG, van der Plicht, J, Spurk, M. 1998. INTCAL98. Radiocarbon 40(3):1041–83.Google Scholar
Wagner, WL, Herbst, DR, Sohmer, SH. 1999. Manual of the flowering plants of Hawaii. Bishop Museum Special Publication 97. Honolulu.Google Scholar
Wichman, FB. 1998. Kaua'i: ancient place-names and their stories. Honolulu: University of Hawaii Press.Google Scholar