The time of emergence of climate-induced hydrologic change in Australian rivers

被引:7
作者
John, Andrew [1 ]
Nathan, Rory [1 ]
Horne, Avril [1 ]
Fowler, Keirnan [1 ]
Stewardson, Michael [1 ]
Peel, Murray [1 ]
Webb, J. Angus [1 ]
机构
[1] Univ Melbourne, Dept Infrastruct Engn, Water Environm & Agr Program, Parkville, Vic 3010, Australia
基金
澳大利亚研究理事会;
关键词
Time of emergence; Climate change impacts on rivers; Hydroclimate variability; Climate change adaptation; DEPENDENT ECOSYSTEMS; FLOW; DROUGHT; RUNOFF; TRENDS; MODEL; VARIABILITY; STREAMFLOW; RAINFALL; IMPACTS;
D O I
10.1016/j.jhydrol.2023.129371
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Climate change impacts on river flows are leading to substantial changes in water availability for human and natural systems. The significance of these impacts largely depends on the degree of change relative to natural variability. The 'Time of Emergence' (ToE) is the point in time (past or future) when the signal of climate change emerges from the noise of background variability. The ToE has been assessed for some climate variables but rarely streamflows. Here we investigate ToE of changes in streamflow across Australia for various characteristic periods relevant to different water management objectives. We assess the uncertainty in ToE estimates from different emissions pathways and a large ensemble of CMIP6 climate model projections. ToE is likely to occur earlier in hydrologic systems subject to low natural variability than those subject to high variability, and to systems that are vulnerable to failure over longer rather than shorter periods. There are clear regional differences in the patterns of ToE, with changes first emerging in south-west regions of Australia, followed by the south-east, then east and north. We estimate that ToE has already occurred in over 10% of sampled rivers for longer characteristic periods, primarily in south-west Australia. Importantly for planning, the results show that ToE in flows precedes ToE in precipitation by up to 50 years due to compounding effects of changes in annual pre-cipitation, precipitation seasonality, and increasing temperatures. The number of catchments projected to have reached ToE by 2080 is heavily influenced by the trajectory of future emissions. A low emissions pathway generally consistent with aspirational goals of the Paris Climate Agreement (SSP1-2.6) substantially delays the emergence of significant hydrological change by up to 50 years, or negates emergence entirely by 2080, depending on location. Our methods can be applied to catchments globally, and our findings have implications for the prioritisation of climate adaptation efforts across different river systems and the urgency of continued action on climate change mitigation.
引用
收藏
页数:10
相关论文
共 50 条
[11]   Seasonal hydrologic responses to climate change in the Pacific Northwest [J].
Vano, Julie A. ;
Nijssen, Bart ;
Lettenmaier, Dennis P. .
WATER RESOURCES RESEARCH, 2015, 51 (04) :1959-1976
[12]   Climate change and other trends in streamflow observations in Australian forested catchments since 1970 [J].
Vervoort, R. Willem ;
Dolk, Michaela M. ;
van Ogtrop, Floris F. .
HYDROLOGICAL PROCESSES, 2021, 35 (01)
[13]   Vulnerability of an Endangered Amphibian to Climate-Change Induced Hydrologic Change [J].
Irving, Katie ;
Taniguchi-Quan, Kristine T. ;
Santana, Abel ;
Treglia, Michael L. ;
Fisher, Robert N. ;
Haas, Jeremy ;
Loflen, Chad ;
Brown, Chris ;
Stein, Eric D. .
RIVER RESEARCH AND APPLICATIONS, 2025,
[14]   Time of emergence of impacts of climate change on groundwater levels in sub-Saharan Africa [J].
Ascott, M. J. ;
Macdonald, D. M. J. ;
Sandwidi, W. J. P. ;
Black, E. ;
Verhoef, A. ;
Zongo, G. ;
Tirogo, J. ;
Cook, P. .
JOURNAL OF HYDROLOGY, 2022, 612
[15]   A framework for evaluating regional hydrologic sensitivity to climate change using archetypal watershed modeling [J].
Lopez, S. R. ;
Hogue, T. S. ;
Stein, E. D. .
HYDROLOGY AND EARTH SYSTEM SCIENCES, 2013, 17 (08) :3077-3094
[16]   Hydrologic response to climate change and human activities in a subtropical coastal watershed of southeast China [J].
Huang, Jinliang ;
Zhang, Zhenyu ;
Feng, Yuan ;
Hong, Huasheng .
REGIONAL ENVIRONMENTAL CHANGE, 2013, 13 (06) :1195-1210
[17]   Going with the flow: Hydrologic response of middle Lena River (Siberia) to the climate variability and change [J].
Gautier, Emmanuele ;
Depret, Thomas ;
Costard, Francois ;
Virmoux, Clement ;
Fedorov, Alexander ;
Grancher, Delphine ;
Konstantinov, Pavel ;
Brunstein, Daniel .
JOURNAL OF HYDROLOGY, 2018, 557 :475-488
[18]   Hydrologic response to climate change in the Densu River Basin in Ghana [J].
Oti, Jonathan Opoku ;
Kabo-bah, Amos T. ;
Ofosu, Eric .
HELIYON, 2020, 6 (08)
[19]   Interbasin river mapping between Californian and Turkish rivers for climate change assessment [J].
Dogan, Mustafa Sahin .
JOURNAL OF WATER AND CLIMATE CHANGE, 2024, 15 (06) :2547-2561
[20]   Multimodel assessment of climate change-induced hydrologic impacts for a Mediterranean catchment [J].
Perra, Enrica ;
Piras, Monica ;
Deidda, Roberto ;
Paniconi, Claudio ;
Mascaro, Giuseppe ;
Vivoni, Enrique R. ;
Cau, Pierluigi ;
Marras, Pier Andrea ;
Ludwig, Ralf ;
Meyer, Swen .
HYDROLOGY AND EARTH SYSTEM SCIENCES, 2018, 22 (07) :4125-4143