Soil organic matter dynamics in mountainous environments ...

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Soil organic matter dynamics in mountainous environments under a changing climate - Concepts and methodology Frank Hagedorn and Stephan Zimmermann Swiss Federal Institute for Forest, Snow and Landscape Research (WSL) Birmensdorf (CH)

Transcript of Soil organic matter dynamics in mountainous environments ...

Page 1: Soil organic matter dynamics in mountainous environments ...

Soil organic matter dynamics in

mountainous environments under a changing climate -

Concepts and methodology

Frank Hagedorn

and Stephan Zimmermann

Swiss Federal Institute for Forest, Snow and Landscape Research (WSL)

Birmensdorf (CH)

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outli

ne

1. Why to look at feedbacks climate change - SOM?

2. Experimental approaches

3. Case study: Treelines in the Ural mountains

4. Case study: Alpine treeline in Stillberg (Switzerland)

5. Learning from the global C distribution and past

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Batjes, European Journal of Soil Science, 47, 151-163, 1996

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back

grou

ndFeedbacks: Warming C storage

SOM-decay + _atmospheric

CO2

Warming

Growth

SOMincrease

C storage

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back

s: S

OM

cl

imat

eWill changes in soil organic carbon act as a positive

or negative feedback on global warming?

Miko U.F. KirschbaumBiogeochemistry 48, 21-51, 2000

LGM: Last Glacial Maximum

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Feed

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s: S

OM

cl

imat

e

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Tem

pera

ture

dep

ende

ncy

Growth

SOM

increase

Warming

SOM-decay+

_

atmospheric

CO2

C storage

)(2 )/( 12

10

110TTkkQ −=

Van't Hoff, 1898: Change of reaction rates across 10K

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Exp

erim

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l app

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1. Laboratory incubations

2. Soil warming studies

3. Altitudinal/latitudinal transects

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Labo

rato

ry in

cuba

tion

CO2 -Production

DOC-leaching

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Labo

rato

ry in

cuba

tion

From Reichstein et al. (2000): Soil Biol. Biochem. 32, 947-958

Temperature drives soil respiration

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Labo

rato

ry in

cuba

tion

Q10 -

Temperature dependent

Ref.: Kirschbaum (1995): Soil Biol. Biochem. 27, 753-760Mikan et al. (2002): Soil Biol. Biochem. 34, 1785-1795

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Sum

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bora

tory

incu

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• Temperature sensitivity greater at lower T

Limitations

• More rapid losses of labile SOM at high T

• Disturbance, no input

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Soi

l war

min

g st

udie

sExperimental Warming

Greenhouse-WarmingVal Bercla, Switzerland

Marion et al., Global Change Biology 3 (Suppl.1), 20-32, 1997Hollister and Webber, Global Change Biology 6, 835-842, 2000

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UV-Lamps

Problems: Decreasing air humidityNon-uniform heating

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Soil Disturbance

Non-uniform heating

Heating cables

Problems

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l war

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sWarming: increased C losses

Ref.: Melillo et al. (2002): Science 298, 2173-2176

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l war

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sWarming: increased C losses

Ref.: Melillo et al. (2002): Science 298, 2173-2176

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Sum

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y so

il w

arm

ing

stud

ies Experimental warming

• Warming = Drying

• Uneven warming: C fluxes respond differently

• Response time dependent

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Alti

tudi

nal t

rans

ects

Maly Iremel, Southern-Ural

Altitudinal transect

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Alti

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Where to look?

1.

Sensitive region

2.

Low anthropogenic influence

3.

Large areas

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Alti

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rans

ects

http://arctic.atmos.uiuc.edu/

Summer Winter

Global Warming -

Greater warming in winter

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Alti

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rans

ects

Treeline is limited by summer temperature

Ref.: Körner & Paulsen (2004): Journal of Biogeography 31, 713-732

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Study Area -

Treeline in the Ural mountains

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Alti

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ects

1999(Moiseev, Shiyatov, 2003)

1976

1929Rising treelines

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Alti

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1929

1999

Rising treelines

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Northern treeline

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-25

-20

-15

-10

-10

-5

0

5

10

5

10

15

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1850 1900 1950 2000-10

-5

0

5

April

January

Mon

thly

Mea

n Te

mpe

ratu

re (°

C)

October

July

+3.6°C

+4.0°C

+1.4°C

+0°C

Year

South-UralTaganai,1100 mData from Fomin, Moiseev

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Sum

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y al

titud

inal

tran

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s 1.

Treeline sensitive to temperature

2.

Large scale changes of treelines in remote regions

3.

Warming particular in winter (?)

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lEarly Response Areas for Climate Change in Eurasia -

Spatio-Temporal Dynamics of the Upper Tree-line in the Ural

Mountains and Implications for Carbon Sequestration

IPAE, USFEU Ekaterinburg

SB RAS Krasnojarsk

ETH Zürich

Uni Halle

WSL Birmensdorf

EU-INTAS

Diploma thesis of Adrian Kammer under the supervision of Dr. Frank Hagedorn, WSL Birmensdorf

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Maly Iremel, Southern-Ural

Altitudinal Gradient: ‚Space for time and climatic change‘

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Treeline (1360m.a.s.l.)

3km

Forest (1260m.a.s.l.)

Mali Iremel (1449m.a.s.l)

Altitudinal Gradient

0.3K

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lC-pool estimates

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Devy, Mazepa, Hagedorn, Rigling unpublished data

C-pool estimates: C-Allocation

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Maly Iremel, Southern-Ural

Transect: ‚Space for time and climate change‘C-pools and productivity

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1. Greater C-Input through more biomass

(above-ground: 180 vs. 60 g C m-2y-1)

2. Greater decomposition through warming ?

Rising treeline and soil carbon: mechanisms

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01.01.2004 01.07.2004 01.01.2005 01.07.2005

-20

-15

-10

-5

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Tundra 1350 m Forest 1250 m

Air

Tem

pera

ture

(°C

)

Micro climate: air temperature

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01.01.2004 01.07.2004 01.01.2005 01.07.2005

-20

-15

-10

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Tundra 1350 m Forest 1250 m

Soil

Air

Tem

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ture

(°C

)

Micro climate: soil temperature

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1360 m

1300 m

Winter climate

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1200

1250

1300

1350

1400

1450

0 20 40 60 80 100 -8 -6 -4 -2 0 2Soil

Wintertemperature (°C)

Snow height (cm)

Alti

tude

(m.a

.s.l.

) Treeline

Winter climate: Snow height and temperature

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Sampling: soil C pools

• 3 altitudes

•4 trees

•2 profiles under trees and

‚open‘ land

• L, F, H, 0-7cm, 7-25cm, 25-C

• additional topsoil sampling

• areal and volume based sampling

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Soils: Cambisols

Tundra 1360 m a.s.l.

Forest 1260 m a.s.l.

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lAltitudinal transect Ural: Soil profiles

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lAltitudinal transect Ural: Soil C pools

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lAltitudinal transect Ural: Soil C pools

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Kammer, Hagedorn unpublished data

Altitudinal transect Ural: Soil C-Pools

Maly Iremel: Southern-Ural

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Kammer, Hagedorn unpublished data

Altitudinal transect Ural: Soil C-Pools and producitivity

Maly Iremel: Southern-Ural

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lAltitudinal transect Ural:SOM quality changes from tundra to forest

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lAltitudinal transect Ural:SOM quality changes from tundra to forest

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1. Increasing biomass: 15 tC/ha 75 tC/ha

2. Tripling of litter input

3. 20-40%-increase of soil C pool + 20-40 t C ha-1

4. SOM quality increases

Rising treelines and C pools

SOM <–> climate change

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lC-Mineralisation (SOM CO2)

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lC-Mineralisation (SOM CO2)

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lIn situ decomposition (litter bags)

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lAnnual C mineralization

Modelling with soil temperatures and SOM pools ICBM (Andrén & Kätterer, 1997)

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lAnnual C in-

and outputs

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Rising treelines

Greater decomposition

More biomass (15 75 t C ha-1)

Better Decomposability

Warmer microclimate

Greater litter input

Faster C-turnover compensated for greater C inputsHow does it affect N-cycling?

Summary

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lN-Mineralisation

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Warming

Precipitation1

Soil temperature

Snow cover

SOM turnover

Microbial activity

Plant (Tree)-

growth

N availability

Feedbacks: Winterwarming -

Rising Treeline

1Devi et al., Global Change Biology 14, 1581-1591, 2008

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SOM <-> climate change: Summary

Climatic change likely affects C in-

and outputs in similar ways

Total SOM pool (=C sink) remains unchanged

SOM turnover increases

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M. Bauer, P. Egli, T. Handa, S. Hättenschwiler, J. Hutzler, T. Hollmann, A. Kammer, R. Köchli,

Ch. Körner, W. Landolt, P. Moiseev, A. Rigling, M. Saurer, R. Siegwolf, D. Spinnler, D.

Tarjan, A. Zürcher,…Schweizer Nationalfonds, BAFU, EU-INTAS

Thanks!