High-resolution climate projection over the Tibetan Plateau using WRF forced by bias-corrected CESM
暂无分享,去创建一个
[1] Jianping Tang,et al. WRF gray-zone dynamical downscaling over the Tibetan Plateau during 1999–2019: model performance and added value , 2022, Climate Dynamics.
[2] L. Tian,et al. Spatial patterns and possible mechanisms of precipitation changes in recent decades over and around the Tibetan Plateau in the context of intense warming and weakening winds , 2022, Climate Dynamics.
[3] Jianping Tang,et al. Reanalysis‐driven multi‐RCM high‐resolution simulation of precipitation within CORDEX East Asia Phase II , 2022, International Journal of Climatology.
[4] Zong‐Liang Yang,et al. Bias-corrected CMIP6 global dataset for dynamical downscaling of the historical and future climate (1979–2100) , 2021, Scientific data.
[5] T. Zhou,et al. Mean and extreme precipitation changes over China under SSP scenarios: results from high-resolution dynamical downscaling for CORDEX East Asia , 2021, Climate Dynamics.
[6] Hongwen Zhang,et al. Projected changes in precipitation recycling over the Tibetan Plateau based on a global and regional climate model , 2021, Journal of Hydrometeorology.
[7] R. Rasmussen,et al. WRF Gray‐Zone Simulations of Precipitation Over the Middle‐East and the UAE: Impacts of Physical Parameterizations and Resolution , 2021, Journal of Geophysical Research: Atmospheres.
[8] Shuyu Wang,et al. Uncertainty of land surface model and land use data on WRF model simulations over China , 2021, Climate Dynamics.
[9] Shuyu Wang,et al. Elevation‐Dependent Warming Over the Tibetan Plateau From an Ensemble of CORDEX‐EA Regional Climate Simulations , 2021, Journal of Geophysical Research: Atmospheres.
[10] Donglin Guo,et al. Climate change projection over the Tibetan Plateau based on a set of RCM simulations , 2021 .
[11] Kun Yang,et al. Added value of kilometer-scale modeling over the third pole region: a CORDEX-CPTP pilot study , 2021, Climate Dynamics.
[12] F. Giorgi,et al. The first multi-model ensemble of regional climate simulations at kilometer-scale resolution part 2: historical and future simulations of precipitation , 2021, Climate Dynamics.
[13] R. Vautard,et al. Assessment of the European Climate Projections as Simulated by the Large EURO‐CORDEX Regional and Global Climate Model Ensemble , 2020, Journal of Geophysical Research: Atmospheres.
[14] F. Justino,et al. Validation of a 9-km WRF dynamical downscaling of temperature and precipitation for the period 1980–2005 over Central South Chile , 2020, Theoretical and Applied Climatology.
[15] H. Gu,et al. Performance of the RegCM4.6 for High-Resolution Climate and Extreme Simulations over Tibetan Plateau , 2020, Atmosphere.
[16] R. Rasmussen,et al. Convection-Permitting Regional Climate Simulations in the Arabian Gulf Region Using WRF Driven by Bias-Corrected GCM Data , 2020, Journal of Climate.
[17] B. Yin,et al. Historical Evaluation and Future Projections of 100‐m Wind Energy Potentials Over CORDEX‐East Asia , 2020, Journal of Geophysical Research: Atmospheres.
[18] Fei Chen,et al. Evaluation of a Convection-Permitting Modeling of Precipitation over the Tibetan Plateau and Its Influences on the Simulation of Snow-Cover Fraction , 2020, Journal of Hydrometeorology.
[19] Zhongbo Yu,et al. Sensitivity studies and comprehensive evaluation of RegCM4.6.1 high-resolution climate simulations over the Tibetan Plateau , 2020, Climate Dynamics.
[20] Kun Yang,et al. Simulation of summer precipitation diurnal cycles over the Tibetan Plateau at the gray-zone grid spacing for cumulus parameterization , 2020, Climate Dynamics.
[21] Deliang Chen,et al. Dynamical downscaling simulation and projection for mean and extreme temperature and precipitation over central Asia , 2020, Climate Dynamics.
[22] P. Thornton,et al. High-resolution and bias-corrected CMIP5 projections for climate change impact assessments , 2020, Scientific Data.
[23] Y. Ruan,et al. Assessment of CMIP5 GCM Simulation Performance for Temperature Projection in the Tibetan Plateau , 2019, Earth and Space Science.
[24] Jia Wu,et al. Present day bias and future change signal of temperature over China in a series of multi-GCM driven RCM simulations , 2019, Climate Dynamics.
[25] W. Dong,et al. Projected temperature and precipitation changes on the Tibetan Plateau: results from dynamical downscaling and CCSM4 , 2019, Theoretical and Applied Climatology.
[26] Hongwen Zhang,et al. Decomposition of Future Moisture Flux Changes over the Tibetan Plateau Projected by Global and Regional Climate Models , 2019, Journal of Climate.
[27] Chao Zhang,et al. Assessing the Performance of CMIP5 Global Climate Models for Simulating Future Precipitation Change in the Tibetan Plateau , 2019, Water.
[28] F. Giorgi. Thirty Years of Regional Climate Modeling: Where Are We and Where Are We Going next? , 2019, Journal of Geophysical Research: Atmospheres.
[29] Shiqiang Zhang,et al. Projecting climate change impacts on hydrological processes on the Tibetan Plateau with model calibration against the glacier inventory data and observed streamflow , 2019, Journal of Hydrology.
[30] C. Bernhofer,et al. Statistically downscaled climate dataset for East Africa , 2019, Scientific Data.
[31] Deliang L. Chen,et al. Temporal and spatial changes in estimated near‐surface air temperature lapse rates on Tibetan Plateau , 2018 .
[32] Jianqi Sun,et al. Evaluation of CORDEX regional climate models in simulating temperature and precipitation over the Tibetan Plateau , 2018 .
[33] Meixue Yang,et al. Precipitation over the Tibetan Plateau during recent decades: a review based on observations and simulations , 2018 .
[34] Deliang Chen,et al. Comparison between past and future extreme precipitations simulated by global and regional climate models over the Tibetan Plateau , 2018 .
[35] D. Jacob,et al. On the role of horizontal resolution over the Tibetan Plateau in the REMO regional climate model , 2018, Climate Dynamics.
[36] Kun Yang,et al. Impact of model resolution on simulating the water vapor transport through the central Himalayas: implication for models’ wet bias over the Tibetan Plateau , 2018, Climate Dynamics.
[37] A. P. Dimri,et al. Assessment of CORDEX-South Asia experiments for monsoonal precipitation over Himalayan region for future climate , 2018, Climate Dynamics.
[38] Guoxiong Wu,et al. Understanding the surface temperature cold bias in CMIP5 AGCMs over the Tibetan Plateau , 2017, Advances in Atmospheric Sciences.
[39] Yang Wang,et al. Evaluation of WRF Simulations With Different Selections of Subgrid Orographic Drag Over the Tibetan Plateau , 2017 .
[40] G. Ren,et al. Downscaled climate change projections for the Hindu Kush Himalayan region using CORDEX South Asia regional climate models , 2017 .
[41] Deliang L. Chen,et al. Evaluation of global climate models for downscaling applications centred over the Tibetan Plateau , 2017 .
[42] Shuyu Wang,et al. Impact of spectral nudging on regional climate simulation over CORDEX East Asia using WRF , 2017, Climate Dynamics.
[43] Shih-Chieh Kao,et al. High‐resolution ensemble projections of near‐term regional climate over the continental United States , 2016 .
[44] R. Leung,et al. A review on regional convection‐permitting climate modeling: Demonstrations, prospects, and challenges , 2015, Reviews of geophysics.
[45] Zhenming Ji,et al. Evaluation of extreme climate events using a regional climate model for China , 2015 .
[46] Deliang Chen,et al. Evaluation of WRF Mesoscale Climate Simulations over the Tibetan Plateau during 1979–2011 , 2015 .
[47] A. Provenzale,et al. Precipitation in the Karakoram-Himalaya: a CMIP5 view , 2015, Climate Dynamics.
[48] M. Kanamitsu,et al. Dynamical downscaling: Fundamental issues from an NWP point of view and recommendations , 2014, Asia-Pacific Journal of Atmospheric Sciences.
[49] G. Holland,et al. Bias corrections of global models for regional climate simulations of high-impact weather , 2014, Climate Dynamics.
[50] Zong‐Liang Yang,et al. A new dynamical downscaling approach with GCM bias corrections and spectral nudging , 2013 .
[51] W. Collins,et al. The Community Earth System Model: A Framework for Collaborative Research , 2013 .
[52] Martyn P. Clark,et al. Importance of Regional Climate Model Grid Spacing for the Simulation of Heavy Precipitation in the Colorado Headwaters , 2013 .
[53] T. Zhou,et al. Near future (2016-40) summer precipitation changes over China as projected by a regional climate model (RCM) under the RCP8.5 emissions scenario: Comparison between RCM downscaling and the driving GCM , 2013, Advances in Atmospheric Sciences.
[54] G. Georgievski,et al. Added value of convection permitting seasonal simulations , 2013, Climate Dynamics.
[55] Shi-chang Kang,et al. Double-Nested Dynamical Downscaling Experiments over the Tibetan Plateau and Their Projection of Climate Change under Two RCP Scenarios , 2013 .
[56] K. Fraedrich,et al. Future Climate in the Tibetan Plateau from a Statistical Regional Climate Model , 2013 .
[57] Ed Hawkins,et al. Calibration and bias correction of climate projections for crop modelling: An idealised case study over Europe , 2013 .
[58] G. Holland,et al. Modeling high-impact weather and climate: lessons from a tropical cyclone perspective , 2012, Climatic Change.
[59] D. Jiang,et al. Latest update of the climatology and changes in the seasonal distribution of precipitation over China , 2013, Theoretical and Applied Climatology.
[60] Weiguang Wang,et al. Multi-model ensemble projections in temperature and precipitation extremes of the Tibetan Plateau in the 21st century , 2012 .
[61] F. Giorgi,et al. Climate change over the Yarlung Zangbo–Brahmaputra River Basin in the 21st century as simulated by a high resolution regional climate model , 2011 .
[62] G. Hegerl,et al. Indices for monitoring changes in extremes based on daily temperature and precipitation data , 2011 .
[63] A. Gobiet,et al. Empirical‐statistical downscaling and error correction of daily precipitation from regional climate models , 2011 .
[64] Kevin W. Manning,et al. The community Noah land surface model with multiparameterization options (Noah-MP): 1. Model description and evaluation with local-scale measurements , 2011 .
[65] T. Yao. Glacial fluctuations and its impacts on lakes in the southern Tibetan Plateau , 2010 .
[66] Yuping Yan,et al. Climate warming and associated changes in atmospheric circulation in the eastern and central Tibetan plateau from a homogenized dataset , 2010 .
[67] E. Martin,et al. Comparison of three downscaling methods in simulating the impact of climate change on the hydrology of Mediterranean basins , 2010 .
[68] T. Yao,et al. Review of climate and cryospheric change in the Tibetan Plateau , 2010 .
[69] G. Thompson,et al. Explicit Forecasts of Winter Precipitation Using an Improved Bulk Microphysics Scheme. Part II: Implementation of a New Snow Parameterization , 2008 .
[70] Meixue Yang,et al. Precipitation Distribution along the Qinghai-Xizang (Tibetan) Highway, Summer 1998 , 2008 .
[71] V. Mosbrugger,et al. The Top of the World as a Climate Sensor , 2008 .
[72] W. Collins,et al. Radiative forcing by long‐lived greenhouse gases: Calculations with the AER radiative transfer models , 2008 .
[73] Bin Wang,et al. Tibetan Plateau warming and precipitation changes in East Asia , 2008 .
[74] Tandong Yao,et al. Glacier and lake variations in the Mapam Yumco basin, western Himalaya of the Tibetan Plateau, from 1974 to 2003 using remote-sensing and GIS technologies , 2008, Journal of Glaciology.
[75] T. Yao,et al. Recent Glacial Retreat and Its Impact on Hydrological Processes on the Tibetan Plateau, China, and Surrounding Regions , 2007 .
[76] John Harte,et al. Experimental warming, not grazing, decreases rangeland quality on the Tibetan Plateau. , 2007, Ecological applications : a publication of the Ecological Society of America.
[77] A. Kitoh,et al. Projection of global warming onto regional precipitation over Mongolia using a regional climate model , 2007 .
[78] Zhi-Yong Yin,et al. Temporal trends and variability of daily maximum and minimum, extreme temperature events, and growing season length over the eastern and central Tibetan Plateau during 1961-2003 , 2006 .
[79] Liu Shiyin,et al. Snow Cover Distribution, Variability, and Response to Climate Change in Western China , 2006 .
[80] H. Niino,et al. An Improved Mellor–Yamada Level-3 Model: Its Numerical Stability and Application to a Regional Prediction of Advection Fog , 2006 .
[81] Mark C. Serreze,et al. Climate change and variability using European Centre for Medium‐Range Weather Forecasts reanalysis (ERA‐40) temperatures on the Tibetan Plateau , 2005 .
[82] G. Danabasoglu,et al. The Community Climate System Model Version 4 , 2011 .
[83] T. Yao,et al. Recent glacial retreat in High Asia in China and its impact on water resource in Northwest China , 2004 .
[84] Yuanjing Zhu,et al. Remote sensing of precipitation on the Tibetan Plateau using the TRMM Microwave Imager , 2001 .
[85] Zhi-Yong Yin,et al. Spatial and Temporal Variation of Summer Precipitation over the Eastern Tibetan Plateau and the North Atlantic Oscillation , 2001 .
[86] Xiao-dong Liu,et al. Climatic warming in the Tibetan Plateau during recent decades , 2000 .
[87] H. Storch,et al. A Spectral Nudging Technique for Dynamical Downscaling Purposes , 2000 .
[88] Neville Nicholls,et al. Clivar/GCOS/WMO Workshop on Indices and Indicators for Climate Extremes Workshop Summary , 1999 .