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首页> 外文期刊>Hydrology and Earth System Sciences >Reconstruction of global gridded monthly sectoral water withdrawals for 1971-2010 and analysis of their spatiotemporal patterns
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Reconstruction of global gridded monthly sectoral water withdrawals for 1971-2010 and analysis of their spatiotemporal patterns

机译:1971 - 2010年全球包装月度措施的重建及其时空模式的分析

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摘要

Human water withdrawal has increasingly altered the global water cycle in past decades, yet our understanding of its driving forces and patterns is limited. Reported historical estimates of sectoral water withdrawals are often sparse and incomplete, mainly restricted to water withdrawal estimates available at annual and country scales, due to a lack of observations at seasonal and local scales. In this study, through collecting and consolidating various sources of reported data and developing spatial and temporal statistical downscaling algorithms, we reconstruct a global monthly gridded (0.5 degrees) sectoral water withdrawal dataset for the period 1971-2010, which distinguishes six water use sectors, i.e., irrigation, domestic, electricity generation (cooling of thermal power plants), livestock, mining, and manufacturing. Based on the reconstructed dataset, the spatial and temporal patterns of historical water withdrawal are analyzed. Results show that total global water withdrawal has increased significantly during 1971-2010, mainly driven by the increase in irrigation water withdrawal. Regions with high water with-drawal are those densely populated or with large irrigated cropland production, e.g., the United States (US), eastern China, India, and Europe. Seasonally, irrigation water withdrawal in summer for the major crops contributes a large percentage of total annual irrigation water withdrawal in midand high-latitude regions, and the dominant season of irrigation water withdrawal is also different across regions. Domestic water withdrawal is mostly characterized by a summer peak, while water withdrawal for electricity generation has a winter peak in high-latitude regions and a summer peak in low-latitude regions. Despite the overall increasing trend, irrigation in the western US and domestic water withdrawal in western Europe exhibit a decreasing trend. Our results highlight the distinct spatial pattern of human water use by sectors at the seasonal and annua
机译:在过去的几十年中,人类戒烟越来越多地改变了全球水循环,但我们对其驱动力和模式的理解有限。报告的历史估计部门戒烟估计通常是稀疏和不完整的,主要限于在季节性和地方尺度缺乏观察的年度和乡村级别的戒烟估计。在本研究中,通过收集和巩固报告的数据和开发空间和时间统计缩小算法的各种来源,我们重建了1971 - 2010年期间的全球每月网格(0.5度)的部门撤出数据集,该数据集区分了六个水分使用部门,即,灌溉,国内,发电(热电厂的冷却),牲畜,采矿和制造。基于重建的数据集,分析了历史戒断的空间和时间模式。结果表明,在1971 - 2010年期间,全球戒烟总量显着增加,主要由灌溉水戒断的增加而导致。带有高水位的地区是人口密集或大型灌溉农田生产的地区,例如美国(美国),中国东部,印度和欧洲。季节性地,夏季为主要作物的灌溉用水戒烟有助于在中间高纬度地区的年度灌溉戒烟总额占较大的百分比,灌溉用水季节的主要季节也不同。国内戒烟主要是夏季峰的特点,而电器发电的措施在高纬度地区的冬季峰值和低纬度地区的夏季峰值。尽管趋势总体上涨,美国西部西部的灌溉和西欧的国内戒烟表现出降低趋势。我们的结果突出了季节性和Annua的扇区的不同空间模式

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  • 作者单位

    Chinese Acad Sci Inst Geog Sci &

    Nat Resources Res Key Lab Water Cycle &

    Related Land Surface Proc Beijing Peoples R China;

    Pacific Northwest Natl Lab Joint Global Change Res Inst College Pk MD 20740 USA;

    Pacific Northwest Natl Lab Richland WA USA;

    Chinese Acad Sci Inst Geog Sci &

    Nat Resources Res Key Lab Water Cycle &

    Related Land Surface Proc Beijing Peoples R China;

    Pacific Northwest Natl Lab Richland WA USA;

    Pacific Northwest Natl Lab Joint Global Change Res Inst College Pk MD 20740 USA;

    Pacific Northwest Natl Lab Joint Global Change Res Inst College Pk MD 20740 USA;

    Goethe Univ Frankfurt Inst Phys Geog Frankfurt Germany;

    Univ Kassel Ctr Environm Syst Res Kassel Germany;

    Potsdam Inst Climate Impact Res PIK Res Domain Earth Syst Anal Potsdam Germany;

    Natl Inst Environm Studies Ctr Global Environm Res Tsukuba Ibaraki Japan;

    IIASA Schlosspl 1 A-2361 Laxenburg Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水文科学(水界物理学);
  • 关键词

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