HR: 0800h
AN: PP11A-0549 [Abstracts]
TI: Ocean Circulation and Gateway Closures During the Late Miocene (~13-5 Ma)
AU: * Nathan, S A
EM: snathan@geo.umass.edu
AF: Department of Geoscieces, University of Massachusetts, Morrill Science Center
611 North Pleasant Street
University of Massachusetts, Amherst, MA 01003
United States
AU: Leckie, R M
EM: mleckie@geo.umass.edu
AF: Department of Geoscieces, University of Massachusetts, Morrill Science Center
611 North Pleasant Street
University of Massachusetts, Amherst, MA 01003
United States
AB:
Long-term climate change is driven by tectonic influences, including changes in ocean circulation that are the result of
ocean gateway closure. During the middle to late Miocene (~13-5 Ma), both tropical ocean circulation and deep water
production were reorganized due to the increasing constriction of the Indonesian and Central American seaways. For example,
the waters of the modern Pacific equatorial current system do not move freely into the Indian Ocean (i.e., via the Indonesian
Throughflow, ITF) but instead pile up to form the Western Pacific Warm Pool (a thermal anomaly that greatly influences
tropical Pacific climate and ocean circulation). Here we use a continuous record of multispecies stable isotope stratigraphy
and foraminiferal assemblage counts from Ontong Java Plateau to demonstrate that during middle to late Miocene time,
progressive restriction of the ITF, modulated by sea level fluctuations, resulted in the waxing and waning of a proto-warm
pool in the western equatorial Pacific (WEP). The proto-warm pool profoundly affected the early late Miocene "carbonate
crash" (an anomalous decrease of carbonate in deep sea sediments) and the late Miocene "biogenic bloom" (sharp increase in
carbonate accumulation rates across the tropical Indo-Pacific).
We hypothesize that El Ni¤o/La Ni¤a-like alternations of tropical carbonate preservation and productivity between the western
and eastern equatorial Pacific during the late Miocene were the consequence of early warm pool development and decay. A
proto-warm pool was formed ~12.1-10.6 Ma, which initiated a nutrient-rich Equatorial Undercurrent and/or increased Trade Wind
strength. These La Ni¤a-like conditions sustained carbonate productivity in the eastern equatorial Pacific (EEP) at a time
when carbonate preservation sharply declined in the Caribbean. Proto-warm pool weakening and El Ni¤o-like conditions
~10.6-8.8 Ma intensified a "carbonate crash" in the EEP, while resurgence of the warm pool and La Ni¤a-like conditions after
~6.5 Ma spurred a "biogenic bloom". The production of deep water in the northern North Atlantic (i.e., Northern Component
Water, NCW) may also have been modulated by sea level fluctuations as the Central American Seaway became increasingly
constricted by the uplift of the Panama sill during the late Miocene. We suggest that the sea level fluctuations that
facilitated the early development of a proto-warm pool in the WEP, particularly the Mi5 event at 11.4 Ma, also constricted
flow through the Central American Seaway and controlled NCW production at this time in the North Atlantic.
DE: 4870 Stable isotopes
DE: 4267 Paleoceanography
SC: Paleoceanography and Paleoclimatology [PP]
MN: 2004 AGU Fall Meeting