Published November 2018 | Version v1
Journal article

Scale dependency of regional climate modeling of current and future climate extremes in Germany

  • 1. Justus-Liebig-University Giessen, Department of Geography, Climatology, Climate Dynamics and Climate Change (Germany)
  • 2. University of Trier, Department of Environmental Meteorology (Germany)
  • 3. Max Planck Institute for Meteorology (Germany)

Description

A warmer climate is projected for mid-Europe, with less precipitation in summer, but with intensified extremes of precipitation and near-surface temperature. However, the extent and magnitude of such changes are associated with creditable uncertainty because of the limitations of model resolution and parameterizations. Here, we present the results of convection-permitting regional climate model simulations for Germany integrated with the COSMO-CLM using a horizontal grid spacing of 1.3 km, and additional 4.5- and 7-km simulations with convection parameterized. Of particular interest is how the temperature and precipitation fields and their extremes depend on the horizontal resolution for current and future climate conditions. The spatial variability of precipitation increases with resolution because of more realistic orography and physical parameterizations, but values are overestimated in summer and over mountain ridges in all simulations compared to observations. The spatial variability of temperature is improved at a resolution of 1.3 km, but the results are cold-biased, especially in summer. The increase in resolution from 7/4.5 km to 1.3 km is accompanied by less future warming in summer by 1 C. Modeled future precipitation extremes will be more severe, and temperature extremes will not exclusively increase with higher resolution. Although the differences between the resolutions considered (7/4.5 km and 1.3 km) are small, we find that the differences in the changes in extremes are large. High-resolution simulations require further studies, with effective parameterizations and tunings for different topographic regions. Impact models and assessment studies may benefit from such high-resolution model results, but should account for the impact of model resolution on model processes and climate change.

Additional details

Identifiers

Publishing Information

Journal Title
Theoretical and Applied Climatology
Journal Volume
134
Journal Issue
3-4
Journal Page Range
p. 829-848
ISSN
0177-798X
CODEN
TACLEK

INIS

Country of Publication
Austria
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51031991
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
CLIMATE MODELS; CLIMATIC CHANGE; COMPUTER CODES; CONVECTION; FEDERAL REPUBLIC OF GERMANY; MOUNTAINS; REGIONAL ANALYSIS; SIMULATION
Descriptors DEC
DEVELOPED COUNTRIES; ENERGY TRANSFER; EUROPE; HEAT TRANSFER; MASS TRANSFER; MATHEMATICAL MODELS; WESTERN EUROPE

Optional Information

Copyright
Copyright (c) 2017 The Author(s)