Exploring a variable-resolution approach for simulating regional climate in the Rocky Mountain region using the VR-CESM

The reliability of climate simulations and projections, particularly in the regions with complex terrains, is greatly limited by the model resolution. In this study we evaluate the variable-resolution Community Earth System Model (VR-CESM) with a high-resolution (0.125 degrees) refinement over the Rocky Mountain region. The VR-CESM results are compared with observations, as well as CESM simulation at a quasi-uniform 1 degrees resolution (UNIF) and Canadian Regional Climate Model version 5 (CRCM5) simulation at a 0.11 degrees resolution. We find that VR-CESM is effective at capturing the observed spatial patterns of temperature, precipitation, and snowpack in the Rocky Mountains with the performance comparable to CRCM5, while UNIF is unable to do so. VR-CESM and CRCM5 simulate better the seasonal variations of precipitation than UNIF, although VR-CESM still overestimates winter precipitation whereas CRCM5 and UNIF underestimate it. All simulations distribute more winter precipitation along the windward (west) flanks of mountain ridges with the greatest overestimation in VR-CESM. VR-CESM simulates much greater snow water equivalent peaks than CRCM5 and UNIF, although the peaks are still 10-40% less than observations. Moreover, the frequency of heavy precipitation events (daily precipitation >= 25 mm) in VR-CESM and CRCM5 is comparable to observations, whereas the same events in UNIF are an order of magnitude less frequent. In addition, VR-CESM captures the observed occurrence frequency and seasonal variation of rain-on-snow days and performs better than UNIF and CRCM5. These results demonstrate the VR-CESM's capability in regional climate modeling over the mountainous regions and its promising applications for climate change studies.

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Copyright 2017 American Geophysical Union.


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Author Wu, Chenglai
Liu, Xiaohong
Lin, Zhaohui
Rhoades, Alan M.
Ullrich, Paul A.
Zarzycki, Colin M.
Lu, Zheng
Rahimi-Esfarjani, Stefan R.
Publisher UCAR/NCAR - Library
Publication Date 2017-10-28T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:15:55.192192
Metadata Record Identifier edu.ucar.opensky::articles:21440
Metadata Language eng; USA
Suggested Citation Wu, Chenglai, Liu, Xiaohong, Lin, Zhaohui, Rhoades, Alan M., Ullrich, Paul A., Zarzycki, Colin M., Lu, Zheng, Rahimi-Esfarjani, Stefan R.. (2017). Exploring a variable-resolution approach for simulating regional climate in the Rocky Mountain region using the VR-CESM. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7kd21kb. Accessed 17 June 2025.

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