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Study on Carbon Budget for Ecosystems of China: Aspects and Progress

Study on Carbon Budget for Ecosystems of China: Aspects and Progress. Yao Huang (huangy@mail.iap.ac.cn) Institute of Atmospheric Physics Chinese Academy of Sciences. SCIENTIFIC THEMES FOR CHINESE SCIENTISTS. How do C sources and sinks vary over time for different ecosystems?

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Study on Carbon Budget for Ecosystems of China: Aspects and Progress

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  1. Study on Carbon Budget for Ecosystems of China: Aspects and Progress Yao Huang (huangy@mail.iap.ac.cn) Institute of Atmospheric Physics Chinese Academy of Sciences

  2. SCIENTIFIC THEMES FOR CHINESE SCIENTISTS • How do C sources and sinks vary over time for different ecosystems? • How do patterns of C sources and sinks distribute regionally? • Key factors driving the processes of C cycling in different ecosystems?

  3. SCIENTIFIC THEMES FOR CHINESE SCIENTISTS • Responses of different ecosystems to the global change? • Options that can enhance the C storage and/or reduce the C emissions from different ecosystems?

  4. Projects • Study on Carbon Budget in Terrestrial and Marginal Sea Ecosystems of China, CBTSEClaunched by the Chinese Academy of Sciences (2001~2005) • Carbon Cycle and Driving Mechanisms in China Terrestrial Ecosystems, CCDMCTE supported by the Ministry of Science and Technology of China (2003~2007)

  5. Objectives oftheCBTSEC • To clarify the characteristics of C fluxes and reservoirs for different ecosystems • To address the role of climate, soil and human actions playing in the terrestrial C cycling processes

  6. To compile an inventory of current C budget regarding to the terrestrial ecosystems of China • To evaluate the potential response of ecosystems to projected global change

  7. To assess the contribution of land-use and land-cover change (LUCC) to C sink/source relationship during the last 100-year period • To develop techniques that can enhance the C storage and/or reduce C emissions

  8. I: Measurements of C fluxes and reservoirs (Eddy covariance, Static chamber/GC system, RS) Characteristics of C fluxes and reservoirs for typical ecosystems III: History of C cycling: LUCC IV:CModel:Assimilation & Respiration II:Biogeochemical processes of C cycling: Responses of C cycling to climate, soil and human activities V:Patterns of C sources/ sinks and options 1. Seasonal variation of C sources/sinks: Model output 2. Regional distribution of C sources/sinks: Model + GIS + RS output 3. Response of ecosystems to projected global change: C-model+GCM+GIS output 4. Potential in enhancing C storage 5. Options for mitigating C emissions and/or enhancing C storage Framework of the CBTSEC

  9. Topics and Progress of the CBTSEC 1 Carbon fluxes and reservoirs in typical Chinese terrestrial and marginal sea ecosystems Key aspects: Observations and measurements in situ • Eddy covariance • Static chamber/GC system • Remote sensing

  10. Establishment of ChinaFlux network Eddy covariance, Static Chamber/GC, Remote Sensing

  11. Observations and measurements in situ (Eddy Covariance)

  12. Temperate conifer-broadleaved forest (42°24’N, 128°28’E, 763m) Higher NEE in forest Higher NEE in cropland Cropland (36°57’N, 116°36’E, 20m) Lower NEE in high-frigid brush High-frigid brush (37°45’N, 101°12’E, 3200m)

  13. Observations and measurements in situ Static chamber

  14. Respiration from forest soil is higher than that from soils of cropland and grassland

  15. Increased atmospheric CO2 concentration enhanced CH4 emission from rice paddy FACE Ambient CO2

  16. 常绿针叶 落叶针叶 针阔混交 常绿阔叶 落叶阔叶 草地 灌丛 荒漠 农田 无植被 100 750 Annual NPP from RS 375 50 Identification of land cover from RS 0 0 Percentage of land cover from RS

  17. 2 Biogeochemical processes of C cycling in different ecosystems of China Key aspects: • Decomposition and retention of the litter-C in forest ecosystems as influenced by climate • Processes of C cycling in typical pasture ecosystems such as temperate grass and high-frigid meadow grass • Key factors and mechanisms regulating organic C balance in agricultural soils

  18. Carbon released from litter decomposition accounted for ~30% of soil respiration in temperate conifer-broadleavedforest

  19. Some 17% of net photosynthesis of maize and soybean is released through rhizospheric respiration

  20. Crop dark respiration increased with tissue N concentration

  21. Plant root contributes greatly to soil carbon in grassland

  22. 3 Patterns of C sinks and sources and the response to global change Key aspects: • Modeling C emission/assimilation • Integration of C models with GCMs, GIS and RS • Geographical and temporal patterns of C sources and sinks • Response of different ecosystems to the global change

  23. Models are developed for the sections of forest, grassland, cropland and wetland, respectively. Upscaling: integration of models and GIS and RS

  24. Upscaling: daily weather (10km× 10km)

  25. Upscaling: soil parameter (10km× 10km)

  26. Upscaling: cropping system (10km×10km)

  27. 4 LUCC and mitigation options Key aspects: • Contribution of LUCC to the C cycling • Options for mitigating C emissions and/or enhancing C storage

  28. Arable land increased from 1661 to 1950 while decreased thereafter

  29. Yingtan (after14-year) Fengqiu (after12-year) There is a great potential for enhancing C storage in agricultural soils

  30. Institutes are involved in the CBTSEC • Institute of geography science and resource • Institute of Atmospheric Physics • Institute of Applied Ecology • Institute of Soil Sciences • Institute of Botany Sciences • Institute of Remote Sensing • Center of Ecology and Environment Sciences • Chinese Ecosystem Research Network • …

  31. Thank You

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