MULTIPLE INSTABILITIES AND MODES OF GLACIAL RHYTHMICITY IN THE PLIOPLEISTOCENE - A GENERAL-THEORY OF LATE CENOZOIC CLIMATIC-CHANGE

被引:42
作者
SALTZMAN, B
VERBITSKY, MY
机构
[1] Department of Geology and Geophysics, Yale University, New Haven, 06511, CT
关键词
D O I
10.1007/BF00208010
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
It has been noted that several distinct modes of glacial oscillation have existed during the past few million years, ranging from low-amplitude, high-frequency oscillations in the early Pliocene, through relatively high amplitude, predominantly near-40 ky period, oscillations in the late Pliocene and early Pleistocene, to the major near-100 ky period oscillations of the late Pleistocene. In addition to other plausible mechanisms suggested previously to explain aspects of this multi-rhythmic phenomenon, we now illustrate another possible contributor to this type of behavior based on the hypothesis that the slow-response climatic system is bistable and that two kinds of internal instability may be operative along with externally imposed forcing due to earth-orbital (Milankovitch) radiation changes and slow, tectonically-induced changes in atmospheric carbon dioxide. These two instabilities have been discussed previously: one is due to positive feedback in the global carbon cycle leading to near-100 ky free oscillations of the ice sheets, and the other is due to the potential for ice-calving catastrophes associated with bedrock variations that can lead to oscillations of a period near 40 ky, independent of obliquity forcing. Within the framework of a dynamical model containing the possibility for these two instabilities, as well as for stable modes, we show (1) how Milankovitch radiative changes or stochastic forcing influencing ice sheets can induce aperiodic (chaotic) transitions between the possible stable and unstable modes, and more significantly, (2) how progressive, long-term, tectonically-induced, changes in carbon dioxide, acting in concert with earth-orbital radiative variations in high Northern Hemisphere latitudes, can force systematic transitions between the modes. Such systematic changes can result in an ice mass chronology for the past 5 My that is qualitatively similar to the observed record of global ice mass. In essence, we have constructed a minimum dynamical model of the late Cenozoic climatic changes, containing what are believed to be the main physical factors determiningthese changes: ice mass, bedrock depression, atmospheric ic carbon dioxide concentration, deep ocean thermohaline state, Milankovitch radiation forcing, and slow tectonically-induced carbon dioxide forcing. This model forms the basis for a coherent theory for the complex climatic events of this long period.
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页码:1 / 15
页数:15
相关论文
共 39 条
[1]  
[Anonymous], 1991, CLIM DYNAM
[2]  
[Anonymous], GEOPHYS MONOGR
[3]   VOSTOK ICE CORE PROVIDES 160,000-YEAR RECORD OF ATMOSPHERIC CO2 [J].
BARNOLA, JM ;
RAYNAUD, D ;
KOROTKEVICH, YS ;
LORIUS, C .
NATURE, 1987, 329 (6138) :408-414
[4]  
BERGER AL, 1978, J ATMOS SCI, V35, P2362, DOI [10.1175/1520-0469(1978)035<2362:LTVODI>2.0.CO
[5]  
2, 10.1016/0033-5894(78)90064-9]
[6]   THE CARBONATE-SILICATE GEOCHEMICAL CYCLE AND ITS EFFECT ON ATMOSPHERIC CARBON-DIOXIDE OVER THE PAST 100 MILLION YEARS [J].
BERNER, RA ;
LASAGA, AC ;
GARRELS, RM .
AMERICAN JOURNAL OF SCIENCE, 1983, 283 (07) :641-683
[7]   SLOW PHYSICS OF LARGE CONTINENTAL ICE SHEETS AND UNDERLYING BEDROCK AND ITS RELATION TO THE PLEISTOCENE ICE AGES [J].
BIRCHFIELD, GE ;
GRUMBINE, RW .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1985, 90 (NB13) :1294-1302
[8]  
BIRCHFIELD GE, 1989, CLIM DYNAM, V4, P57
[9]   OCEAN CHEMISTRY DURING GLACIAL TIME [J].
BROECKER, WS .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1982, 46 (10) :1689-1705
[10]  
Chalikov D. V., 1990, ADV GEOPHYS, V32, P75