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Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperatur e CO 2 currents INTERGLACIAL
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Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Dec 18, 2015

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Page 1: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Orbital forcings

The ocean-atmosphere system:primary responses to orbital

forcings

ATMOSPHERE

OCEAN

temperaturehumidity

CO2winds

GLACIAL

volumetemperature

CO2currents

INTERGLACIAL

Page 2: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

The oceanic d18O record:

80-90% RSL response;10-20%

temperatureresponse?

Page 3: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

SST changes

from LGM to present in coastal

waters of N. California

(~100 km offshore?)

Page 4: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Radiolarian assemblages in core 1019 (989 m water depth)

green line = GISP2 18O record; black line=radiolarian record

T1YD

Page 5: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Primary productivity and zones of coastal upwelling

image: terra.nasa.gov

Page 6: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Pelagic diatom assemblages of the N. Pacific

(e.g. Okhotsk Sea cluster = one of three subarctic water masses, shown in black)

from: Sancetta & Silvestri (1986) Paleoceanography 1, 163-180.

579

580

V20-119

V20-107

V21-172RC10-216

Page 7: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

“Okhotsk

cluster” through

time

Page 8: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

RSL -temperature - salinity interactions in the Red Sea

Low RSL = hypersaline Red Sea = no planktonic forams

from

: R

ohlin

g e

t al. (

1998)

Natu

re,

394,

162-1

65.

Page 9: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

A Heinrich

layer (H-1) in a

deep-sea core

pela

gic

ooze

ooze

H -

layer

(ooze

-fille

d b

urr

ow

s?)

Page 10: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Iceberg-rafted detritus (IRD) in H1

Page 11: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.
Page 12: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Heinrich events in the North Atlantic Ocean

Page 13: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.
Page 14: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Oceanographic effects of drifting icebergs

>200 m

drift

cold fresh water

nutrient-deficient

nutrient-rich detritus

Page 15: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Heinrich (5-10 ka) events

and Bond cycles

(~1.5 ka)in VM23-

81

Page 16: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

N.

Atl

anti

c cu

rrents

:ic

eberg

-dri

ft r

oute

s

Page 17: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

The N. Atlantic ‘gate’ and the ‘binge-purge’ cycle of the Laurentide ice

sheet

Ocean‘polar front’

cold

warm

Page 18: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Dansgaard-Oeschger cycles and Heinrich events

Page 19: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Thermohaline circulation

Page 20: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Binge and purge: is there a Heinrich record in Antarctica?

antiphasing?

Page 21: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Inferred Late

Glacial and

Holocene SST

(Aegean Sea)

from: Geraga et al., (2000), Palaeo3, 156, 1-17

YD

H1

SST C(org)%

Page 22: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Sapropel stratum in a core from the eastern

Mediterranean

(“sapro” = putrid - refers to high Corg content); “pel” = mud

Page 23: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Episodes of sapropel

formation in the last 200 000

years in the eastern

Mediterranean

from: Kallel et al., (2000), Palaeo3, 157, 45-58

S1 S3 S4 S5 S6 S7

30°N

Page 24: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Laminated sapropel deposits

from: Kemp et al., (1999), Nature, 398, 57-61

Page 25: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Sapropels:annually

laminated diatom mats

from: Kemp et al., (1999), Nature, 398, 57-61

Page 26: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Sapropel formation hypothesisafter Kemp et al., (1999), Nature, 398, 57-61.

(see Sancetta (1999), Nature 398, 27-29 for discussion)

• Greater freshwater runoff to eastern Mediterranean (heavy rainfall in Nile headwaters and in Med. Basin); leads to:• Enhanced stratification of surface waters, produces ‘nutricline’ across surface halocline; leads to:• Massive bloom of diatoms adapted to stratified waters (chiefly Rhizosolenia spp. and Hemiaulus hauckii).• Winter mixing of water column causes mass sinking of diatom mats.• Mixing brings nutrients to surface, promoting conventional near- surface winter blooms of mixed diatoms.

Page 27: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Freshwater sources in the Mediterranean

base map from: Kallel et al., (2000), Palaeo3, 157, 45-58

Page 28: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Sapropels and climate of the Nile basin

S1a S1b

“sapropelic”Eastern Mediterranean sedimentary record*

Eastern Saharan sedimentary and archaeological record**

* Geraga et al., (2000), Palaeo3, 156, 1-17** Malville et al., (1998), Nature 392, 488-491

arid wet arid

11 10 9 8 7 6 5 4 3 2 1 0 ka BP

Page 29: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Location of core74 KL in

the Arabian

Sea

Page 30: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

74 KL: 18O, dust deposition and CaCo3

production

Dust minimum

78508850

Page 31: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Sahara dust storm over adjacent Atlantic Ocean

image: terra.nasa.gov

Page 32: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Dust accumulation and palaeoproductivity (core Meteor 12392: on continental rise offshore of Spanish

Sahara)

Page 33: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Japan Sea dust record

Dust source: Mongolia/N. China

Page 34: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Iron fertilization experiment:polar Southern Ocean (I)

days

from

: B

oyd e

t al., (2

00

0),

N

atu

re 4

07

, 6

95

-70

2.

Page 35: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Iron fertilization experiment:polar Southern Ocean (II)

Page 36: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Mechanisms of CO2 drawdown

Page 37: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

CO2 drawdown (Vostok)

Page 38: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Iron fertilization experiment:polar Southern Ocean (III)

Page 39: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

DMS makes clouds “brighter than white”

from: Charlson et al., (1987) Nature 326, 655-661

Page 40: Orbital forcings The ocean-atmosphere system: primary responses to orbital forcings ATMOSPHERE OCEAN temperature humidity CO 2 winds GLACIAL volume temperature.

Points to considerOcean/atmosphere temperature - CO2 - sea

icefeedbacks.

Continental climates and oceanic responses:dust exports and palaeoproductivity;monsoonal rains and sapropels;glacial surging and THC switching.

Palaeoproductivity patterns: consider effects of currents, RSL and marine food chains.