Enhancing winter climate simulations of the Great Lakes: insights from a new coupled lake–ice–atmosphere (CLIAv1) system on the importance of integrating 3D hydrodynamics with a regional climate model
<p>The Laurentian Great Lakes significantly influence the climate of the Midwest and Northeast United States due to their vast thermal inertia, moisture source potential, and complex heat and moisture flux dynamics. This study presents a newly developed coupled lake–ice–atmosphere (CLIAv1) mod...
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| Main Authors: | P. Xue, C. Huang, Y. Zhong, M. Notaro, M. B. Kayastha, X. Zhou, C. Zhao, C. Peters-Lidard, C. Cruz, E. Kemp |
|---|---|
| Format: | Article |
| Language: | English |
| Published: |
Copernicus Publications
2025-07-01
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| Series: | Geoscientific Model Development |
| Online Access: | https://gmd.copernicus.org/articles/18/4293/2025/gmd-18-4293-2025.pdf |
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