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Evaluation of High Mountain Asia-Land Data Assimilation System (version 1) from 2003 to 2016: 2. The impact of assimilating satellite-based snow cover and freeze/thaw observations into a land surface model
- Source :
- Journal of Geophysical Research: Atmospheres. 127(7)
- Publication Year :
- 2022
- Publisher :
- United States: NASA Center for Aerospace Information (CASI), 2022.
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Abstract
- This second paper of the two-part series focuses on demonstrating the impact of assimilating satellite-based snow cover and freeze/thaw observations into the hyper-resolution, offline terrestrial modeling system used for the High Mountain Asia (HMA) region from 2003 to 2016. To this end, this study systematically evaluates a total of six sets of 0.01° (∼1 km) model simulations forced by different precipitation forcings, with and without the dual assimilation scheme enabled, at point-scale, basin-scale, and domain-scale. The key variables of interest include surface net shortwave radiation, surface net longwave radiation, skin temperature, near-surface soil temperature, snow depth, snow water equivalent (SWE), and total runoff. First, the point-scale assessment is mainly conducted via evaluating against ground-based measurements. In general, the assimilation enabled estimates are better than no-assimilation counterparts. Second, the basin-scale runoff assessment demonstrates that across three snow-dominated basins, the assimilation enabled experiment yields systematic improvements in all goodness-of-fit statistics through mitigating the negative effects brought by the fixed long-term precipitation correction factors. For example, when forced by the bias-corrected precipitation, the assimilation-enabled experiment improves the bias by 69%, the root-mean-squared error by 30%, and the unbiased root-mean-squared error by 18% (relative to the no-assimilation counterpart). Finally, the domain-scale assessment is conducted via evaluating against satellite-based SWE and skin temperature products. Both sets of domain-scale analysis further corroborate the findings in the point-scale evaluations. Overall, this study suggests the benefits of the proposed multi-variate assimilation system in improving the cryospheric-hydrological process within a land surface model for use in HMA.
- Subjects :
- Earth Resources And Remote Sensing
Geophysics
Subjects
Details
- Language :
- English
- ISSN :
- 21698996 and 2169897X
- Volume :
- 127
- Issue :
- 7
- Database :
- NASA Technical Reports
- Journal :
- Journal of Geophysical Research: Atmospheres
- Notes :
- 430728.02.80.01.14, , NNH15ZDA001N-HMA, , NNX16AQ89G, , M-cube U064214, , Water Theme U068408
- Publication Type :
- Report
- Accession number :
- edsnas.20220009581
- Document Type :
- Report
- Full Text :
- https://doi.org/10.1029/2021JD035992