Soil CO2 efflux and soil carbon balance of a tropical rubber plantation
Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land-use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the...
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Published in | Advances in ecological research Vol. 28; no. 6; pp. 969 - 979 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Tokyo
Springer Japan
01.11.2013
Springer Blackwell Publishing Ltd Elsevier |
Subjects | |
Online Access | Get full text |
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Abstract | Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land-use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the soil carbon balance of a 15-year-old rubber plantation in Thailand and we specifically explored the seasonal dynamic of soil CO
2
efflux (
F
S
) in relation to seasonal changes in soil water content (
W
S
) and soil temperature (
T
S
), assessed the partitioning of
F
S
between autotrophic (
R
A
) and heterotrophic (
R
H
) sources in a root trenching experiment and estimated the contribution of aboveground and belowground carbon inputs to the soil carbon budget. A multiplicative model combining both
T
S
and
W
S
explained 58 % of the seasonal variation of
F
S
. Annual soil CO
2
efflux averaged 1.88 kg C m
−2
year
−1
between May 2009 and April 2011 and
R
A
and
R
H
accounted for respectively 63 and 37 % of
F
S
, after corrections of
F
S
measured on trenched plots for root decomposition and for difference in soil water content. The 4-year average annual aboveground litterfall was 0.53 kg C m
−2
year
−1
while a conservative estimate of belowground carbon input into the soil was much lower (0.17 kg C m
−2
year
−1
). Our results highlighted that belowground processes (root and rhizomicrobial respiration and the heterotrophic respiration related to belowground carbon input into the soil) have a larger contribution to soil CO
2
efflux (72 %) than aboveground litter decomposition. |
---|---|
AbstractList | Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land-use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the soil carbon balance of a 15-year-old rubber plantation in Thailand and we specifically explored the seasonal dynamic of soil CO 2 efflux ( F S) in relation to seasonal changes in soil water content ( W S) and soil temperature ( T S), assessed the partitioning of F S between autotrophic ( R A) and heterotrophic ( R H) sources in a root trenching experiment and estimated the contribution of aboveground and belowground carbon inputs to the soil carbon budget. A multiplicative model combining both T S and W S explained 58 % of the seasonal variation of F S. Annual soil CO 2 efflux averaged 1.88 kg C m −2 year −1 between May 2009 and April 2011 and R A and R H accounted for respectively 63 and 37 % of F S, after corrections of F S measured on trenched plots for root decomposition and for difference in soil water content. The 4-year average annual aboveground litterfall was 0.53 kg C m −2 year −1 while a conservative estimate of belowground carbon input into the soil was much lower (0.17 kg C m −2 year −1). Our results highlighted that belowground processes (root and rhizomicrobial respiration and the heterotrophic respiration related to belowground carbon input into the soil) have a larger contribution to soil CO 2 efflux (72 %) than aboveground litter decomposition. Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land‐use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the soil carbon balance of a 15‐year‐old rubber plantation in Thailand and we specifically explored the seasonal dynamic of soil CO2 efflux (FS) in relation to seasonal changes in soil water content (WS) and soil temperature (TS), assessed the partitioning of FS between autotrophic (RA) and heterotrophic (RH) sources in a root trenching experiment and estimated the contribution of aboveground and belowground carbon inputs to the soil carbon budget. A multiplicative model combining both TS and WS explained 58 % of the seasonal variation of FS. Annual soil CO2 efflux averaged 1.88 kg C m−2 year−1 between May 2009 and April 2011 and RA and RH accounted for respectively 63 and 37 % of FS, after corrections of FS measured on trenched plots for root decomposition and for difference in soil water content. The 4‐year average annual aboveground litterfall was 0.53 kg C m−2 year−1 while a conservative estimate of belowground carbon input into the soil was much lower (0.17 kg C m−2 year−1). Our results highlighted that belowground processes (root and rhizomicrobial respiration and the heterotrophic respiration related to belowground carbon input into the soil) have a larger contribution to soil CO2 efflux (72 %) than aboveground litter decomposition. Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land-use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the soil carbon balance of a 15-year-old rubber plantation in Thailand and we specifically explored the seasonal dynamic of soil CO2 efflux (F ^sub S^) in relation to seasonal changes in soil water content (W ^sub S^) and soil temperature (T ^sub S^), assessed the partitioning of F ^sub S^ between autotrophic (R ^sub A^) and heterotrophic (R ^sub H^) sources in a root trenching experiment and estimated the contribution of aboveground and belowground carbon inputs to the soil carbon budget. A multiplicative model combining both T ^sub S^ and W ^sub S^ explained 58 % of the seasonal variation of F ^sub S^. Annual soil CO2 efflux averaged 1.88 kg C m^sup -2^ year^sup -1^ between May 2009 and April 2011 and R ^sub A^ and R ^sub H^ accounted for respectively 63 and 37 % of F ^sub S^, after corrections of F ^sub S^ measured on trenched plots for root decomposition and for difference in soil water content. The 4-year average annual aboveground litterfall was 0.53 kg C m^sup -2^ year^sup -1^ while a conservative estimate of belowground carbon input into the soil was much lower (0.17 kg C m^sup -2^ year^sup -1^). Our results highlighted that belowground processes (root and rhizomicrobial respiration and the heterotrophic respiration related to belowground carbon input into the soil) have a larger contribution to soil CO2 efflux (72 %) than aboveground litter decomposition.[PUBLICATION ABSTRACT] Natural rubber is a valuable source of income in many tropical countries and rubber trees are increasingly planted in tropical areas, where they contribute to land-use changes that impact the global carbon cycle. However, little is known about the carbon balance of these plantations. We studied the soil carbon balance of a 15-year-old rubber plantation in Thailand and we specifically explored the seasonal dynamic of soil CO 2 efflux ( F S ) in relation to seasonal changes in soil water content ( W S ) and soil temperature ( T S ), assessed the partitioning of F S between autotrophic ( R A ) and heterotrophic ( R H ) sources in a root trenching experiment and estimated the contribution of aboveground and belowground carbon inputs to the soil carbon budget. A multiplicative model combining both T S and W S explained 58 % of the seasonal variation of F S . Annual soil CO 2 efflux averaged 1.88 kg C m −2 year −1 between May 2009 and April 2011 and R A and R H accounted for respectively 63 and 37 % of F S , after corrections of F S measured on trenched plots for root decomposition and for difference in soil water content. The 4-year average annual aboveground litterfall was 0.53 kg C m −2 year −1 while a conservative estimate of belowground carbon input into the soil was much lower (0.17 kg C m −2 year −1 ). Our results highlighted that belowground processes (root and rhizomicrobial respiration and the heterotrophic respiration related to belowground carbon input into the soil) have a larger contribution to soil CO 2 efflux (72 %) than aboveground litter decomposition. |
Author | Satakhun, Duangrat Thanisawanyangkura, Sornprach Thaler, Philippe Epron, Daniel Gay, Frédéric Chantuma, Pisamai Chairungsee, Naruenat Kasemsap, Poonpipope |
Author_xml | – sequence: 1 givenname: Duangrat surname: Satakhun fullname: Satakhun, Duangrat organization: Center of Thai-French Cooperation on Higher Education and Research, Kasetsart University – sequence: 2 givenname: Frédéric surname: Gay fullname: Gay, Frédéric organization: Center of Thai-French Cooperation on Higher Education and Research, Kasetsart University, CIRAD, UMR Eco&sols – sequence: 3 givenname: Naruenat surname: Chairungsee fullname: Chairungsee, Naruenat organization: Department of Agriculture, Office of Agricultural Research and Development Region 1 – sequence: 4 givenname: Poonpipope surname: Kasemsap fullname: Kasemsap, Poonpipope organization: Department of Horticulture, Faculty of Agriculture, Kasetsart University – sequence: 5 givenname: Pisamai surname: Chantuma fullname: Chantuma, Pisamai organization: Chachoengsao Rubber Research Centre, Rubber Research Institute of Thailand – sequence: 6 givenname: Sornprach surname: Thanisawanyangkura fullname: Thanisawanyangkura, Sornprach organization: Department of Botany, Faculty of Science, Kasetsart University – sequence: 7 givenname: Philippe surname: Thaler fullname: Thaler, Philippe organization: Center of Thai-French Cooperation on Higher Education and Research, Kasetsart University, CIRAD, UMR Eco&sols – sequence: 8 givenname: Daniel surname: Epron fullname: Epron, Daniel email: daniel.epron@univ-lorraine.fr organization: CIRAD, UMR Eco&sols, Ecologie et Ecophysiologie Forestières, Faculté des Sciences, Université de Lorraine, UMR 1137 |
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Keywords | Root biomass Partitioning Soil respiration Seasonal variation Rubber plantation Soils Root Carbon dioxide Biomass Rubber Respiration Carbon balance |
Language | English |
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SubjectTerms | Animal and plant ecology Animal, plant and microbial ecology autotrophs Behavioral Sciences biogeochemical cycles Biological and medical sciences Biomass Biomedical and Life Sciences carbon Carbon cycle Carbon dioxide Decomposition Ecology Evolutionary Biology Forestry Fundamental and applied biological sciences. Psychology General aspects heterotrophs income Land use Landscape ecology Life Sciences mathematical models Moisture content organic horizons Original Article Partitioning plant litter Plant Sciences Plantations Respiration rhizosphere rhizosphere bacteria rhizosphere fungi Root biomass roots Rubber Rubber plantation Rubber trees Seasonal variation Seasonal variations Soil respiration Soil temperature Soil water soil water content soil-atmosphere interactions Soils Synecology Thailand trees trenching tropics Water content Zoology |
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Title | Soil CO2 efflux and soil carbon balance of a tropical rubber plantation |
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