Sensitivity Analysis of the Noah‐MP Land Surface Model for Soil Hydrothermal Simulations Over the Tibetan Plateau

Author:

Hu Wei12ORCID,Ma Weiqiang134ORCID,Yang Zong‐Liang5ORCID,Ma Yaoming12346ORCID,Xie Zhipeng1ORCID

Affiliation:

1. Land‐Atmosphere Interaction and its Climatic Effects Group State Key Laboratory of Tibetan Plateau Earth System, Environment and Resources (TPESER) Institute of Tibetan Plateau Research Chinese Academy of Sciences Beijing China

2. College of Earth and Planetary Sciences University of Chinese Academy of Sciences Beijing China

3. College of Atmospheric Science Lanzhou University Lanzhou China

4. National Observation and Research Station for Qomolongma Special Atmospheric Processes and Environmental Changes Dingri China

5. Department of Geological Sciences The John A. and Katherine G. Jackson School of Geosciences University of Texas at Austin Austin TX USA

6. Kathmandu Center of Research and Education Chinese Academy of Sciences Beijing China

Abstract

AbstractThe Tibetan Plateau (TP) features unique and highly heterogeneous soils, terrains, vegetation, and climate. Accurately modeling complex freeze‐thaw processes and their hydrothermal impacts remains a great challenge. This study focused on deciphering the spatiotemporal variability of diverse parameterization schemes in the soil hydrothermal simulations using the Noah‐MP land surface model. We first discussed the spin‐up time required by the model to reach the equilibrium state, and then performed a sensitivity analysis of these schemes. The Moderate Resolution Imaging Spectroradiometer land surface temperature and Soil Moisture Active Passive remote sensing products were used as benchmarks to evaluate the schemes' performance. Results show that longer spin‐up times are required in permafrost regions owing to water phase changes. Ground temperature and soil temperature are mainly sensitive to energy‐related schemes. Vegetation‐related schemes play an important role after the growing season begins on the southeastern TP. Soil water content shows strong sensitivity to schemes related to both water and energy transport. However, the sensitivity of these energy‐related schemes is weakened when simulating total soil moisture, including the total amount of water and ice, indicating that these schemes have marked impacts on soil freeze‐thaw processes. These results reveal the different spatial (both regional and depth‐related) and temporal effects of parameterization schemes; we also provided a preliminary selection of these schemes at a regional scale that could facilitate the further improvement of the soil hydrothermal simulations on the TP.

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Environmental Chemistry,Global and Planetary Change

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Optimization and Validation of Soil Frozen‐Thawing Parameterizations in Noah‐MP;Journal of Geophysical Research: Atmospheres;2023-11-28

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