Impact of sea ice variability on the oxygen isotope content of seawater under glacial and interglacial conditions

被引:22
作者
Brennan, C. E. [1 ]
Meissner, K. J. [2 ]
Eby, M. [1 ]
Hillaire-Marcel, C. [3 ]
Weaver, A. J. [1 ]
机构
[1] Univ Victoria, Sch Earth & Ocean Sci, Victoria, BC, Canada
[2] Univ New S Wales, Climate Change Res Ctr, Sydney, NSW, Australia
[3] Univ Quebec, Geotop, Montreal, PQ H3C 3P8, Canada
来源
PALEOCEANOGRAPHY | 2013年 / 28卷 / 03期
基金
加拿大自然科学与工程研究理事会; 澳大利亚研究理事会;
关键词
oxygen isotopes; sea ice; glacial-interglacial; SYSTEM CLIMATE MODEL; SURFACE CONDITIONS; NORTH-ATLANTIC; RIVER RUNOFF; ARCTIC-OCEAN; PLANKTONIC-FORAMINIFERA; WATER TEMPERATURE; DEEP WATERS; DELTA-O-18; SALINITY;
D O I
10.1002/palo.20036
中图分类号
P [天文学、地球科学];
学科分类号
070403 [天体物理学];
摘要
Records of temporal variability in the oxygen isotopic composition of biogenic carbonates (O-18(c)) from ocean sediment cores inform our understanding of past continental ice volume and ocean temperatures. Interpretation of (18)O(c)variability typically neglects changes due to factors other than ice volume and temperature. Here we investigate whether glacial-interglacial changes in sea ice, which fractionates seawater during its formation, could shift the isotopic value of seawaterin the deep ocean (affecting benthic foraminiferal O-18(c) and thereby potentially impacting oxygen isotope based sea level reconstructions) or in surface waters (affecting planktic foraminiferal O-18(c)). We simulate glacial and interglacial states with the isotope-enabled University of Victoria Earth System Climate Model and perform a global analysis. Distinct patterns of sea ice production emerge for the glacial versus interglacial states. We find no substantive shift in O-18(w) in model deep or bottom waters due to the simulated interglacial-glacial sea ice variability. Small isotopic shifts due to sea ice variability are concentrated in the model's surface waters of the Northern Hemisphere, specifically in the Labrador Sea and northeastern North Atlantic.
引用
收藏
页码:388 / 400
页数:13
相关论文
共 74 条
[1]
[Anonymous], 1974, Journal of Glaciology, DOI [DOI 10.3189/S0022143000023418, 10.3189/S0022143000023418]
[2]
[Anonymous], 1981, GEOLOGICAL SOC AM MA, V36, P1
[3]
[Anonymous], 1967, PHYS SNOW ICE
[4]
FRESH-WATER BALANCE AND THE SOURCES OF DEEP AND BOTTOM WATERS IN THE ARCTIC-OCEAN INFERRED FROM THE DISTRIBUTION OF (H20)-O-18 [J].
BAUCH, D ;
SCHLOSSER, P ;
FAIRBANKS, RG .
PROGRESS IN OCEANOGRAPHY, 1995, 35 (01) :53-80
[5]
Oxygen isotope composition of living Neogloboquadrina pachyderma (sin) in the Arctic Ocean [J].
Bauch, D ;
Carstens, J ;
Wefer, G .
EARTH AND PLANETARY SCIENCE LETTERS, 1997, 146 (1-2) :47-58
[6]
Water mass processes on Arctic shelves as revealed from δ18O of H2O [J].
Bauch, D ;
Erlenkeuser, H ;
Andersen, N .
GLOBAL AND PLANETARY CHANGE, 2005, 48 (1-3) :165-174
[7]
Last glacial benthic foraminiferal δ18O anomalies in the polar North Atlantic:: A modern analogue evaluation [J].
Bauch, D ;
Bauch, HA .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C5) :9135-9143
[8]
Modelling Oxygen Isotopes in the University of Victoria Earth System Climate Model for Pre-industrial and Last Glacial Maximum Conditions [J].
Brennan, C. E. ;
Weaver, A. J. ;
Eby, M. ;
Meissner, K. J. .
ATMOSPHERE-OCEAN, 2012, 50 (04) :447-465
[9]
The role of ocean transport in the uptake of anthropogenic CO2 [J].
Cao, L. ;
Eby, M. ;
Ridgwell, A. ;
Caldeira, K. ;
Archer, D. ;
Ishida, A. ;
Joos, F. ;
Matsumoto, K. ;
Mikolajewicz, U. ;
Mouchet, A. ;
Orr, J. C. ;
Plattner, G. -K. ;
Schlitzer, R. ;
Tokos, K. ;
Totterdell, I. ;
Tschumi, T. ;
Yamanaka, Y. ;
Yool, A. .
BIOGEOSCIENCES, 2009, 6 (03) :375-390
[10]
OXYGEN ISOTOPES AND SEA-LEVEL [J].
CHAPPELL, J ;
SHACKLETON, NJ .
NATURE, 1986, 324 (6093) :137-140