globalchange  > 气候减缓与适应
DOI: 10.3390/rs11010027
WOS记录号: WOS:000457935600027
论文题名:
Simultaneous Assimilation of Remotely Sensed Soil Moisture and FAPAR for Improving Terrestrial Carbon Fluxes at Multiple Sites Using CCDAS
作者: Wu, Mousong1; Scholze, Marko1; Vossbeck, Michael2; Kaminski, Thomas2; Hoffmann, Georg2
通讯作者: Wu, Mousong
刊名: REMOTE SENSING
ISSN: 2072-4292
出版年: 2019
卷: 11, 期:1
语种: 英语
英文关键词: carbon cycle ; SMOS soil moisture ; JRC-TIP FAPAR ; multi-site assimilation ; uncertainty evaluation
WOS关键词: VEGETATION MODEL ; ECOSYSTEM MODEL ; SYSTEM ; SATELLITE ; PRODUCTS ; EXPERIENCES ; SIMULATION ; FEEDBACK ; BENEFIT ; JULES
WOS学科分类: Remote Sensing
WOS研究方向: Remote Sensing
英文摘要:

The carbon cycle of the terrestrial biosphere plays a vital role in controlling the global carbon balance and, consequently, climate change. Reliably modeled CO2 fluxes between the terrestrial biosphere and the atmosphere are necessary in projections of policy strategies aiming at constraining carbon emissions and of future climate change. In this study, SMOS (Soil Moisture and Ocean Salinity) L3 soil moisture and JRC-TIP FAPAR (Joint Research CentreTwo-stream Inversion Package Fraction of Absorbed Photosynthetically Active Radiation) data with respective original resolutions at 10 sites were used to constrain the process-based terrestrial biosphere model, BETHY (Biosphere, Energy Transfer and Hydrology), using the carbon cycle data assimilation system (CCDAS). We find that simultaneous assimilation of these two datasets jointly at all 10 sites yields a set of model parameters that achieve the best model performance in terms of independent observations of carbon fluxes as well as soil moisture. Assimilation in a single-site mode or using only a single dataset tends to over-adjust related parameters and deteriorates the model performance of a number of processes. The optimized parameter set derived from multi-site assimilation with soil moisture and FAPAR also improves, when applied at global scale simulations, the model-data fit against atmospheric CO2. This study demonstrates the potential of satellite-derived soil moisture and FAPAR when assimilated simultaneously in a model of the terrestrial carbon cycle to constrain terrestrial carbon fluxes. It furthermore shows that assimilation of soil moisture data helps to identity structural problems in the underlying model, i.e., missing management processes at sites covered by crops and grasslands.


Citation statistics:
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/125597
Appears in Collections:气候减缓与适应

Files in This Item:

There are no files associated with this item.


作者单位: 1.Lund Univ, Dept Phys Geog & Ecosyst Sci, S-22362 Lund, Sweden
2.Invers Lab, D-20251 Hamburg, Germany

Recommended Citation:
Wu, Mousong,Scholze, Marko,Vossbeck, Michael,et al. Simultaneous Assimilation of Remotely Sensed Soil Moisture and FAPAR for Improving Terrestrial Carbon Fluxes at Multiple Sites Using CCDAS[J]. REMOTE SENSING,2019-01-01,11(1)
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Wu, Mousong]'s Articles
[Scholze, Marko]'s Articles
[Vossbeck, Michael]'s Articles
百度学术
Similar articles in Baidu Scholar
[Wu, Mousong]'s Articles
[Scholze, Marko]'s Articles
[Vossbeck, Michael]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Wu, Mousong]‘s Articles
[Scholze, Marko]‘s Articles
[Vossbeck, Michael]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.