Have a personal or library account? Click to login
Sensitivity Study of Different RegCM4.4 Model Set-Ups – Recent Results from the TVRegCM Experiment Cover

Sensitivity Study of Different RegCM4.4 Model Set-Ups – Recent Results from the TVRegCM Experiment

Open Access
|Jan 2018

References

  1. 1. Giorgi, F., L. O. Mearns. Approaches to the Simulation of Regional Climate Change: A Review. - Reviews of Geophysics, Vol. 29, 1991, No 2, pp. 191-216.10.1029/90RG02636
  2. 2. Giorgi, F., L. O. Mearns. Introduction to Special Section:Regional Climate Modeling Revisited. - Journal of Geophysical Research, Vol. 104, 1999, pp. 6335-6352.10.1029/98JD02072
  3. 3. Xue, Y., Z. Janjic, J. Dudhia, R. Vasic, F. DeSales. A Review on Regional Dynamical Downscaling in Intraseasonal to Seasonal Simulation/Prediction and Major Factors that Affect Downscaling. - Ability Atmospheric Research, 147-148, 2014, pp. 68-85.10.1016/j.atmosres.2014.05.001
  4. 4. Pieczka, I., R. Pongrácz, K. S. André, F. D. Kelemen, J. Bartholy. Sensitivity Analysis of Different Parameterization Schemes Using RegCM4.3 for the Carpathian Region. - Theor. Appl. Climatol., 2016, pp. 1-14.10.1007/s00704-016-1941-4
  5. 5. Zeng, X., M. Wang, Y. Zhang, Y. Wang, Y. Zheng. Assessing the Effects of Spatial Resolution on Regional Climate Model Simulated Summer Temperature and Precipitation in China: A Case Study. - Advances in Meteorology, Vol. 2016, Article ID 7639567, p. 12.
  6. 6. Davis, N., J. Bowden, F. Semazzi, L. Xie, B. Ö n o l. Customization of RegCM3 Regional Climate Model for Eastern Africa and a Tropical Indian Ocean Domain. - J. Climatol., Vol. 22, 2009, No 13, pp. 3595-3616.10.1175/2009JCLI2388.1
  7. 7. Sinha, P., U. C. Mohanty, S. C. Kar, S. K. Dash, S. Kumari. Sensitivity of the GCM Driven Summer Monsoon Simulations to Cumulus Parameterization Schemes in Nested RegCM3. - Theor. Appl. Climatol., Vol. 1-2, 2013, pp. 285-306.10.1007/s00704-012-0728-5
  8. 8. Raju, P. V. S., R. Bhatla, M. Almazroui, M. Assiri. Performance of Convection Schemes on the Simulation of Summer Monsoon Features over the South Asia CORDEX Domain Using RegCM-4.3. - Int. J. Climatol., Vol. 35, 2015, No 15, pp. 4695-4706.10.1002/joc.4317
  9. 9. Zanis, P., C. Douvis, I. Kapsomenakis, I. Kioutsioukis, D. Melas, J. S. Pal. A Sensitivity Study of the Regional Climate Model (RegCM3) to the Convective Scheme with Emphasis in Central Eastern and Southeastern Europe. - Theor. Appl. Climatol., Vol. 97, 2009, No 3-4, pp. 327-337.10.1007/s00704-008-0075-8
  10. 10. Chervenkov, H., K. Slavov. Simulated Versus Satellite Retrieval Distribution Patterns of the Snow Water Equivalent over Southeast Europe, International Journal of Environmental & Agriculture Research (IJOEAR) ISSN: 2454-1850, Vol. 2, March 2016, Issue 3, pp. 115-122.
  11. 11. Chervenkov, H., K. Slavov. Comparison of Simulated and Objectively Analyzed Distribution Patterns of Snow Water Equivalent over the Carpathian Region. - IDOJARAS, Vol. 120, 2016, No 3, pp. 315-329.
  12. 12. Metsamaki, S., J. Pulliainen, M. Salminen, K. Luojus, A. Wi esmann, R. Solberg, K. Bottcher, M. Hiltunen, E. Ripper. Introduction to GlobSnow Snow Extent Products with Considerations for Accuracy Assessment. - Remote Sensing of Environment, Vol. 156, January 2015, pp. 96-108.10.1016/j.rse.2014.09.018
  13. 13. Szalai, S., et al. Climate of the Greater Carpathian Region. Final Technical Report, 2013. www.carpatclim-eu.org
  14. 14. Kotlarski, S., et al. Regional Climate Modeling on European Scales: A Joint Standard Evaluation of the EURO-CORDEX RCM Ensemble. - Geosci. Model Dev., Vol. 7, 2014, pp. 1297-133.10.5194/gmd-7-1297-2014
  15. 15. Giorgi, F. et all. RegCM: Model Description and Preliminary Tests over Multiple CORDEX Domains. - Clim. Res., Vol. 52, 2012, pp. 7-29. 10.3354/cr01018
  16. 16. Dee, D. P., et al. The ERA-Interim Reanalysis: Configuration and Performance of the Data Assimilation System. - Q. J. R. Meteorol. Soc., Vol. 137, 2011, pp. 553-597.
  17. 17. Brands, S., J. M. Gutiérrez, S. Herrera, A. S. Cofiñ o. On the Use of Reanalysis Data for Downscaling. - J. Climate, Vol. 25, 2012, pp. 2517-2526.10.1175/JCLI-D-11-00251.1
  18. 18. Dickinson, R. E., A. Henderso n-Sellers, P. J. Kenned y. Biosphere-Atmosphere Transfer Scheme (BATS) Version 1e as Coupled to the NCAR Community Climate Model. Tech. Rep., National Center for Atmospheric Research, 1993.
  19. 19. Holtslag, A. A. M., E. I. F. de Bruijn, H.-L. Pan. A High Resolution Air Mass Transformation Model for Shortrange Weather Forecasting. - Mon. Wea. Rev., Vol. 118, 1990, pp. 1561-1575.10.1175/1520-0493(1990)118<;1561:AHRAMT>2.0.CO;2
  20. 20. Holtslag, A. A. M., B. A. Bovill e. Local Versus Nonlocal Boundary-Layer Diffusion in a Global Climate Model. - J. Climate, Vol. 6, 1993, pp. 1825-1842.10.1175/1520-0442(1993)006<;1825:LVNBLD>2.0.CO;2
  21. 21. Bretherton, C. S., J. McCaa, H. Grenie r. A New Parameterization for Shallow Cumulus Convection and Its Application to Marine Subtropical Cloud-Topped Boundary Layers. Part I: Description and 1D Results. - Monthly Weather Review, 2004, pp. 132, 864-882.10.1175/1520-0493(2004)132<;0864:ANPFSC>2.0.CO;2
  22. 22. Grenier, H., C. S. Brethert o n. A Moist PBL Parameterization for Large-Scale Models and Its Application to Subtropical Cloud-Topped Marine Boundary Layers. - Monthly Weather Review, Vol. 129, 2001, pp. 357-377.10.1175/1520-0493(2001)129<;0357:AMPPFL>2.0.CO;2
  23. 23. Elguindi, N., et al. Regional Climate Model RegCM User Manual. Version 4.4., ICTP, Trieste, 2014, p. 34.
  24. 24. Grell, G. Prognostic Evaluation of Assumptions Used by Cumulus Parameterizations. - Mon. Wea. Rev., Vol. 121, 1993, pp. 764-787.10.1175/1520-0493(1993)121<;0764:PEOAUB>2.0.CO;2
  25. 25. Arakawa, A., W. H. Schubert. Interaction of a Cumulus Cloud Ensemble with the Large Scale Environment. Part I. - J. Atmos. Sci., Vol. 31, 1974, pp. 674-701. 10.1175/1520-0469(1974)031<;0674:IOACCE>2.0.CO;2
  26. 26. Fritsch, J. M., C. F. Chappe l. Numerical Prediction of Convectively Driven Mesoscale Pressure Systems. Part I: Convective Parameterization. - J. Atmos. Sci., Vol. 37, 1980, pp. 1722-1733.10.1175/1520-0469(1980)037<;1722:NPOCDM>2.0.CO;2
  27. 27. Emanuel, K. A. A Scheme for Representing Cumulus Convection in Large-Scale Models. - J. Atmos. Sci., Vol. 48, 1991, No 21, pp. 2313-2335.10.1175/1520-0469(1991)048<;2313:ASFRCC>2.0.CO;2
  28. 28. Emanuel, K. A., M. Zivkovic-Rothma n. Development and Evaluation of a Convection Scheme for Use in Climate Models. - J. Atmos. Sci., Vol. 56, 1999, pp. 1766-1782.10.1175/1520-0469(1999)056<;1766:DAEOAC>2.0.CO;2
  29. 29. Tiedtke, M. A Comprehensive Mass Flux Scheme for Cumulus Parameterization in Large- Scale Models. - Bulletin of the American Meteorological Society, Vol. 117, 1989, pp. 1779-1800.10.1175/1520-0493(1989)117<;1779:ACMFSF>2.0.CO;2
  30. 30. Kain, J. S. The Kain-Fritsch Convective Parameterization: An Update. - J Appl. Meteorol., Vol. 43, 2004, pp. 170-180.10.1175/1520-0450(2004)043<;0170:TKCPAU>2.0.CO;2
  31. 31. Kain, J. S., J. M. Fritsc h. A One-Dimensional Entraining/Detraining Plume Model and Its Application in Convective Parameterization. - J Atmos. Sci., Vol. 47, 1990, pp. 2784-2802.10.1175/1520-0469(1990)047<;2784:AODEPM>2.0.CO;2
  32. 32. Anthes, R. A. A Cumulus Parameterization Scheme Utilizing a One-Dimensional Cloud Model. - Mon. Wea. Rev., Vol. 105,1977, pp. 270-286.10.1175/1520-0493(1977)105<;0270:ACPSUA>2.0.CO;2
  33. 33. Haylock, M. R., N. Hofstra, A. M. G. KleinTank, E. J. Klok, P. D. Jones, M. New. A European Daily High-Resolution Gridded Dataset of Surface Temperature and Precipitation. - J. Geophys. Res. (Atmospheres), 2008, p. 113.10.1029/2008JD010201
  34. 34. CDO 2015: Climate Data Operators. http://www.mpimet.mpg.de/cdo
  35. 35. Gadzev, G., V. Ivanov, H. Chervenk o v. TVRegCM Numerical Simulations - Preliminary Results. - In: Lirkov et al., Eds. Springer, 11th International Conference Lecture Notes in Computer Science, Large-Scale Scientific Computing (LSSC’17), 5-9 June 2017, Sozopol, Bulgaria (in Press).
DOI: https://doi.org/10.1515/cait-2017-0051 | Journal eISSN: 1314-4081 | Journal ISSN: 1311-9702
Language: English
Page range: 17 - 26
Published on: Jan 16, 2018
Published by: Bulgarian Academy of Sciences, Institute of Information and Communication Technologies
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2018 Hristo Chervenkov, Vladimir Ivanov, Georgi Gadzhev, Kostadin Ganev, published by Bulgarian Academy of Sciences, Institute of Information and Communication Technologies
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.