Combined Pressures and Climate Change Impacts on the Victorian Water System and Possible Responses

被引:0
|
作者
Turner, G. [1 ]
Baynes, T. [1 ]
West, J. [1 ]
机构
[1] CSIRO Sustainable Ecosyst, Canberra, ACT 2601, Australia
关键词
water; accounts; climate change; adaptation; mitigation; stocks and flows;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The impact of various climate change scenarios has been modelled on the water system of all the river basins across Victoria. Importantly, this analysis has been undertaken in combination with calculations of scenarios of Victorian demography, land-use and electricity generation. We employ a detailed physical account of these sectors using the Victorian Regional Stocks and Flows Framework (VRSFF). The results from the collection of scenarios in VRSFF show the significant impact that some climate scenarios may have on the water system. For example, if predictions of high climate change eventuate and major dam levels are maintained to support urban and rural water use, then our work shows that many of the 29 major river systems in Victoria will be significantly stressed, some dropping to less than 1/3 of their usual flow by mid to late this century. Factoring in possible yearly variations in climate means these river systems, such as the Thomson River and the Murray River entering the neighbouring state of South Australia, may intermittently stop flowing. We also explore potential climate change mitigation and adaptation options, which may also have negative impacts on water security but may be preferable to the alternative of not mitigating. In one scenario, reducing CO2 emissions from electricity generations to 50% of 1990 levels (i.e., not quite reaching a 60-90% target) by 2050 requires per capita consumption rates of goods and energy to be decreased from about 2.0% per year to 0.4%, while also increasing brown coal station efficiency by 25% and replacing most brown coal stations with low or near-zero emission technology, such as biomass, wind, and gas. This scenario produces the lower curve in Figure 1. This analysis clearly indicates the importance of combining technological options with reduced consumption for achieving proposed reductions in greenhouse emissions to avoid dangerous climate change. It also indicates the substantial extent of the change required, especially in terms of avoiding a "rebound" effect if energy end-use efficiencies are proposed as a means of reducing consumption. [GRAPHICS] .
引用
收藏
页码:567 / 573
页数:7
相关论文
共 50 条
  • [21] THE POSSIBLE INFLUENCE ON THE IMPACTS AND VULNERABILITY OF CLIMATE CHANGE: AN EDITORIAL
    Hsu, Tai-Wen
    Lee, Ming-An
    JOURNAL OF MARINE SCIENCE AND TECHNOLOGY-TAIWAN, 2016, 24 (06): : 1049 - 1051
  • [22] Detecting and taking into account possible impacts of climate change
    Renard, Benjamin
    HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU, 2008, (01): : 109 - 117
  • [23] Assessment of possible impacts of climate change in an urban catchment
    Denault, Catherine
    Millar, Robert G.
    Lence, Barbara J.
    JOURNAL OF THE AMERICAN WATER RESOURCES ASSOCIATION, 2006, 42 (03): : 685 - 697
  • [24] Combined impacts of climate and land-use change on future water resources in Africa
    Chawanda, Celray James
    Nkwasa, Albert
    Thiery, Wim
    van Griensven, Ann
    HYDROLOGY AND EARTH SYSTEM SCIENCES, 2024, 28 (01) : 117 - 138
  • [25] Responses and Thresholds of the Egyptian Economy to Climate Change Impacts on the Water Resources of the Nile River
    Kenneth M. Strzepek
    David N. Yates
    Climatic Change, 2000, 46 : 339 - 356
  • [26] Responses and thresholds of the Egyptian economy to climate change impacts on the water resources of the Nile River
    Strzepek, KM
    CLIMATIC CHANGE, 2000, 46 (03) : 339 - 356
  • [27] Understanding the combined impacts of weeds and climate change on crops
    Vilà, Montserrat
    Beaury, Evelyn M.
    Blumenthal, Dana M.
    Bradley, Bethany A.
    Early, Regan
    Laginhas, Brittany B.
    Trillo, Alejandro
    Dukes, Jeffrey S.
    Sorte, Cascade J.B.
    Ibáñez, Inés
    Environmental Research Letters, 2021, 16 (03)
  • [28] Modeling climate change impacts on water trading
    Luo, Bin
    Maqsood, Imran
    Gong, Yazhen
    SCIENCE OF THE TOTAL ENVIRONMENT, 2010, 408 (09) : 2034 - 2041
  • [29] Climate change impacts on water salinity and health
    Vineis P.
    Chan Q.
    Khan A.
    Journal of Epidemiology and Global Health, 2011, 1 (1) : 5 - 10
  • [30] Impacts of climate change on water erosion: A review
    Li, Zhiying
    Fang, Haiyan
    EARTH-SCIENCE REVIEWS, 2016, 163 : 94 - 117