HR: 16:40h
AN: U12B-03 [PDF]
TI: Ocean Drilling Program Records of the Last Five Million Years: A View of the Ocean and Climate System
During a Warm Period and a Major Climate Transition
AU: * Ravelo, A C
EM: acr@es.ucsc.edu
AF: University of California, Santa Cruz, Ocean Sciences
1156 High Street, Santa Cruz, CA 95064 United States
AB:
The warm Pliocene (4.7 to 3.0 Ma), the most recent period in Earth's history when global equilibrium climate was warmer than
today, provides the opportunity to understand what role the components of the climate system that have a long timescale of
response (cryosphere and ocean) play in determining globally warm conditions, and in forcing the major global climate cooling
after 3.0 Ma. Because sediments of this age are well preserved in many locations in the world's oceans, we can potentially
study this warm period in detail. One major accomplishment of the Ocean Drilling Program is the recovery of long continuous
sediment sequences from all ocean basins that span the last 5.0 Ma. Dozens of paleoceanographers have generated climate
records from these sediments. I will present a synthesis of these data to provide a global picture of the Pliocene warm
period, the transition to the cold Pleistocene period, and changes in climate sensitivity related to this transition.
In the Pliocene warm period, tropical sea surface temperature (SST) and global climate patterns suggest average conditions
that resemble modern El Ni¤os, and deep ocean reconstructions indicate enhanced thermohaline overturning and reduced density
and nutrient stratification. The data indicate that the warm conditions were not related to tectonic changes in ocean basin
shape compared to today, rather they reflect the long term adjustment of the climate system to stronger than modern radiative
forcing.
The warm Pliocene to cold Pleistocene transition provides an opportunity to study the feedbacks of various components of the
climate system. The marked onset of significant Northern hemisphere glaciation (NHG) at 2.75 Ma occurred in concert with a
reduction in deep ocean ventilation, but cooling in subtropical and tropical regions was more gradual until Walker
circulation was established in a major step at 2.0 Ma. Thus, regional high latitude ice albedo feedbacks, rather than low
latitude processes, must have been primarily responsible for NHG at 2.75 Ma. And, regional air-sea feedbacks in the tropics,
rather than ice sheet expansion, must have been primarily responsible for the marked increase in Walker circulation at 2.0
Ma. Finally, the detailed timing of events from different regions suggests that a tectonic `threshold' cannot explain the
warm to cold climate transition.
Studies of the last 5.0 Ma can also be used to understand how climate responds to changes in the Earth's radiative budget
because seasonal and latitudinal variations in solar forcing are extremely well known, and many of the records that have been
generated have the resolution and age control appropriate for the study of the climate response to these variations
(Milankovitch cycles). In particular, how feedbacks operate when the mean climate state is warm versus cold can be studied.
There is clear evidence that the amplitude of the climate response to solar forcing depends on the background mean state.
In other words, the sensitivity of the climate to small perturbations in solar forcing has changed with time, and the balance
of evidence indicates that tropical conditions, not high latitude conditions (such as ice sheet size) control this
sensitivity.
In sum, the Ocean Drilling Program has provided scientists with a window into the Pliocene warm period, and an opportunity to
understand the workings of the ocean-climate system
DE: 1635 Oceans (4203)
DE: 3344 Paleoclimatology
DE: 4267 Paleoceanography
DE: 4870 Stable isotopes
SC: U
MN: 2003 Fall Meeting