HR: 0800h
AN: PP41C-0695 [Abstracts]
TI: Relaxation Oscillations as a Mechanism of Abrupt Climate Change
AU: * Marchal, O
EM: omarchal@whoi.edu
AF: Woods Hole Oceanographic Institution, Department of Geology & Geophysics, Woods
Hole, MA 02543, United States
AU: Jackson, C
EM: charles@ig.utexas.edu
AF: University of Texas at Austin, Institute of Geophysics, Austin, TX 78758, United States
AU: Nilsson, J
EM: nilsson@misu.su.se
AF: University of Stockholm, Department of Meteorology, Stockholm, 106 54, Sweden
AU: Paul, A
EM: apau@palmod.uni-bremen.de
AF: University of Bremen, Department of Geosciences, Bremen, D-28334, Germany
AU: Stocker, T
EM: stocker@climate.unibe.ch
AF: University of Bern, Physics Institute, Bern, CH-3012, Switzerland
AB:
Climate variability at the millennial time scale is difficult to rationalize, as the frequency 0.001 1/yr falls near the
middle of a wide gap in the spectrum of external forcing on the climate system (between the low-frequency orbital
components and the high-frequency tidal components). This situation prompted interest in the possibility for the
climate system to undergo self-sustained or self-excited oscillations. Our contribution will comprise two parts.
First, we will review elements from the theory of non-linear vibrations that provide a framework for the discussion
of the fundamental mechanisms responsible for millennial-scale climate variability. Particular emphasis will be
put on the self-sustained oscillations that occur in physical systems with one degree of freedom. In such systems
self-sustained oscillations arise from the nonlinear dependence of the damping force on velocity. In the limit of
very large nonlinearity, the oscillator stores energy for a relatively long period of time and releases this energy in a
relatively short time, i.e., the oscillations are strongly asymmetric (relaxation oscillations). Second, we will
examine the self-sustained oscillations of the meridional overturning circulation simulated by an ocean
circulation model when subject to large freshwater forcing (salt addition at low latitudes and salt extraction at high
latitudes). A scaling analysis provides evidence that these oscillations can be fundamentally interpreted as
relaxation oscillations : the model ocean stores potential energy in the form of an unstable vertical temperature
gradient for a relatively long period of time (phase of reduced MOC) and converts this potential energy into kinetic
energy (phase of intense MOC) when the unstable vertical temperature gradient dominates the stable vertical
salinity gradient in the density stratification. The merits and weaknesses of the hypothesis of relaxation
oscillations as a mechanism of abrupt climate change will be discussed.
DE: 1605 Abrupt/rapid climate change (4901, 8408)
DE: 4445 Nonlinear differential equations
DE: 4532 General circulation (1218, 1222)
DE: 4900 PALEOCEANOGRAPHY (0473, 3344)
SC: Paleoceanography and Paleoclimatology [PP]
MN: 2007 Fall Meeting