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Published June 2020 | Version v1
Journal article

Realised added value in dynamical downscaling of Australian climate change

  • 1. University of New South Wales. Climate Change Research Centre, School of Biological, Earth and Environmental Sciences (Australia)
  • 2. University of New South Wales. Australian Research Council Centre of Excellence for Climate Extremes (Australia)
  • 3. CSIRO Oceans and Atmosphere (Australia)

Description

Coarse resolution global climate models (GCMs) cannot resolve fine-scale drivers of regional climate, which is the scale where climate adaptation decisions are made. Regional climate models (RCMs) generate high-resolution projections by dynamically downscaling GCM outputs. However, evidence of where and when downscaling provides new information about both the current climate (added value, AV) and projected climate change signals, relative to driving data, is lacking. Seasons and locations where CORDEX-Australasia ERA-Interim and GCM-driven RCMs show AV for mean and extreme precipitation and temperature are identified. A new concept is introduced, 'realised added value', that identifies where and when RCMs simultaneously add value in the present climate and project a different climate change signal, thus suggesting plausible improvements in future climate projections by RCMs. ERA-Interim-driven RCMs add value to the simulation of summer-time mean precipitation, especially over northern and eastern Australia. GCM-driven RCMs show AV for precipitation over complex orography in south-eastern Australia during winter and widespread AV for mean and extreme minimum temperature during both seasons, especially over coastal and high-altitude areas. RCM projections of decreased winter rainfall over the Australian Alps and decreased summer rainfall over northern Australia are collocated with notable realised added value. Realised added value averaged across models, variables, seasons and statistics is evident across the majority of Australia and shows where plausible improvements in future climate projections are conferred by RCMs. This assessment of varying RCM capabilities to provide realised added value to GCM projections can be applied globally to inform climate adaptation and model development.

Additional details

Identifiers

Publishing Information

Journal Title
Climate Dynamics
Journal Volume
54
Journal Issue
11-12
Journal Page Range
p. 4675-4692
ISSN
0930-7575
CODEN
CLDYEM

INIS

Country of Publication
Germany
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
55062362
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
ALPS; ALTITUDE; AMBIENT TEMPERATURE; AUSTRALASIA; AUSTRALIA; CLIMATE MODELS; CLIMATIC CHANGE; PRECIPITATION; RESOLUTION; SEASONAL VARIATIONS; SEASONS; SIGNALS; SIMULATION; SOUTHERN OSCILLATION; STATISTICS
Descriptors DEC
AUSTRALASIA; DEVELOPED COUNTRIES; MATHEMATICAL MODELS; MATHEMATICS; MOUNTAINS; SEPARATION PROCESSES; VARIATIONS

Optional Information

Copyright
Copyright (c) 2020 © Springer-Verlag GmbH Germany, part of Springer Nature 2020