TY - JOUR
T1 - Assessment of a tiling energy budget approach in a land surface model, ORCHIDEE-MICT (r8205)
AU - Xi, Yi
AU - Qiu, Chunjing
AU - Zhang, Yuan
AU - Zhu, Dan
AU - Peng, Shushi
AU - Hugelius, Gustaf
AU - Chang, Jinfeng
AU - Salmon, Elodie
AU - Ciais, Philippe
N1 - Publisher Copyright:
© Copyright: 2024 Yi Xi et al.
PY - 2024/6/18
Y1 - 2024/6/18
N2 - The surface energy budget plays a critical role in terrestrial hydrological and biogeochemical cycles. Nevertheless, its highly spatial heterogeneity across different vegetation types is still missing in the ORCHIDEE-MICT (ORganizing Carbon and Hydrology in Dynamic EcosystEms-aMeliorated Interactions between Carbon and Temperature) land surface model. In this study, we describe the representation of a tiling energy budget in ORCHIDEE-MICT and assess its short-term and long-term impacts on energy, hydrology, and carbon processes. With the specific values of surface properties for each vegetation type, the new version presents warmer surface and soil temperatures (∼0.5°C, +3%), wetter soil moisture (∼10kgm-2, +2%), and increased soil organic carbon storage (∼170PgC, +9%) across the Northern Hemisphere. Despite reproducing the absolute values and spatial gradients of surface and soil temperatures from satellite and in situ observations, the considerable uncertainties in simulated soil organic carbon and hydrological processes prevent an obvious improvement in the temperature bias existing in the original ORCHIDEE-MICT model. However, the separation of sub-grid energy budgets in the new version improves permafrost simulation greatly by accounting for the presence of discontinuous permafrost types (∼3×106km2), which will facilitate various permafrost-related studies in the future.
AB - The surface energy budget plays a critical role in terrestrial hydrological and biogeochemical cycles. Nevertheless, its highly spatial heterogeneity across different vegetation types is still missing in the ORCHIDEE-MICT (ORganizing Carbon and Hydrology in Dynamic EcosystEms-aMeliorated Interactions between Carbon and Temperature) land surface model. In this study, we describe the representation of a tiling energy budget in ORCHIDEE-MICT and assess its short-term and long-term impacts on energy, hydrology, and carbon processes. With the specific values of surface properties for each vegetation type, the new version presents warmer surface and soil temperatures (∼0.5°C, +3%), wetter soil moisture (∼10kgm-2, +2%), and increased soil organic carbon storage (∼170PgC, +9%) across the Northern Hemisphere. Despite reproducing the absolute values and spatial gradients of surface and soil temperatures from satellite and in situ observations, the considerable uncertainties in simulated soil organic carbon and hydrological processes prevent an obvious improvement in the temperature bias existing in the original ORCHIDEE-MICT model. However, the separation of sub-grid energy budgets in the new version improves permafrost simulation greatly by accounting for the presence of discontinuous permafrost types (∼3×106km2), which will facilitate various permafrost-related studies in the future.
UR - https://www.scopus.com/pages/publications/85196711091
U2 - 10.5194/gmd-17-4727-2024
DO - 10.5194/gmd-17-4727-2024
M3 - 文章
AN - SCOPUS:85196711091
SN - 1991-959X
VL - 17
SP - 4727
EP - 4754
JO - Geoscientific Model Development
JF - Geoscientific Model Development
IS - 12
ER -