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水资源与生物多样性对全球紧急事件的响应机制(英文)

Water consumption and biodiversity: Responses to global emergency events

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【作者】 赵丹丹刘俊国孙来祥Klaus HubacekStephan Pfister冯奎双郑赫然彭旭王道平杨红沈镭伦飞赵旭陈斌Marko Keskinen张少辉蔡佳亮Olli Varis

【Author】 Dandan Zhao;Junguo Liu;Laixiang Sun;Klaus Hubacek;Stephan Pfister;Kuishuang Feng;Heran Zheng;Xu Peng;Daoping Wang;Hong Yang;Lei Shen;Fei Lun;Xu Zhao;Bin Chen;Marko Keskinen;Shaohui Zhang;Jialiang Cai;Olli Varis;Water & Development Research Group, Department of Built Environment, Aalto University;School of Water Conservancy, North China University of Water Resources and Electric Power;School of Environmental Science and Engineering, Southern University of Science and Technology;Department of Geographical Sciences, University of Maryland;School of Finance and Management, SOAS, University of London;Integrated Research on Energy, Environment and Society, Energy and Sustainability Research Institute Groningen, University of Groningen;ETH Zurich, Institute of Environmental Engineering;The Bartlett School of Sustainable Construction, University College London;School of Business, Jiangnan University;Department of Computer Science and Technology, University of Cambridge;2w2e Environmental Consulting GmbH;Key Laboratory for Resource Use and Environmental Remediation, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences;College of Land Science and Technology, China Agricultural University;Institute of Blue and Green Development, Shandong University;Fudan Tyndall Center, Department of Environmental Science and Engineering, Fudan University;School of Economics and Management, Beihang University;International Institute for Applied Systems Analysis;

【通讯作者】 刘俊国;

【机构】 Water & Development Research Group, Department of Built Environment, Aalto UniversitySchool of Water Conservancy, North China University of Water Resources and Electric PowerSchool of Environmental Science and Engineering, Southern University of Science and TechnologyDepartment of Geographical Sciences, University of MarylandSchool of Finance and Management, SOAS, University of LondonIntegrated Research on Energy, Environment and Society, Energy and Sustainability Research Institute Groningen, University of GroningenETH Zurich, Institute of Environmental EngineeringThe Bartlett School of Sustainable Construction, University College LondonSchool of Business, Jiangnan UniversityDepartment of Computer Science and Technology, University of Cambridge2w2e Environmental Consulting GmbHKey Laboratory for Resource Use and Environmental Remediation, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of SciencesCollege of Land Science and Technology, China Agricultural UniversityInstitute of Blue and Green Development, Shandong UniversityFudan Tyndall Center, Department of Environmental Science and Engineering, Fudan UniversitySchool of Economics and Management, Beihang UniversityInternational Institute for Applied Systems Analysis

【摘要】 Given that it was a once-in-a-century emergency event, the confinement measures related to the coronavirus disease 2019(COVID-19) pandemic caused diverse disruptions and changes in life and work patterns. These changes significantly affected water consumption both during and after the pandemic, with direct and indirect consequences on biodiversity. However, there has been a lack of holistic evaluation of these responses. Here, we propose a novel framework to study the impacts of this unique global emergency event by embedding an environmentally extended supply-constrained global multi-regional input-output model(MRIO) into the drivers-pressure-state-impact-response(DPSIR) framework. This framework allowed us to develop scenarios related to COVID-19 confinement measures to quantify country-sector-specific changes in freshwater consumption and the associated changes in biodiversity for the period of 2020–2025. The results suggest progressively diminishing impacts due to the implementation of COVID-19 vaccines and the socio-economic system’s self-adjustment to the new normal. In2020, the confinement measures were estimated to decrease global water consumption by about 5.7%on average across all scenarios when compared with the baseline level with no confinement measures.Further, such a decrease is estimated to lead to a reduction of around 5% in the related pressure on biodiversity. Given the interdependencies and interactions across global supply chains, even those countries and sectors that were not directly affected by the COVID-19 shocks experienced significant impacts: Our results indicate that the supply chain propagations contributed to 79% of the total estimated decrease in water consumption and 84% of the reduction in biodiversity loss on average. Our study demonstrates that the MRIO-enhanced DSPIR framework can help quantify resource pressures and the resultant environmental impacts across supply chains when facing a global emergency event. Further, we recommend the development of more locally based water conservation measures—to mitigate the effects of trade disruptions—and the explicit inclusion of water resources in post-pandemic recovery schemes. In addition,innovations that help conserve natural resources are essential for maintaining environmental gains in the post-pandemic world.

【Abstract】 Given that it was a once-in-a-century emergency event, the confinement measures related to the coronavirus disease 2019(COVID-19) pandemic caused diverse disruptions and changes in life and work patterns. These changes significantly affected water consumption both during and after the pandemic, with direct and indirect consequences on biodiversity. However, there has been a lack of holistic evaluation of these responses. Here, we propose a novel framework to study the impacts of this unique global emergency event by embedding an environmentally extended supply-constrained global multi-regional input-output model(MRIO) into the drivers-pressure-state-impact-response(DPSIR) framework. This framework allowed us to develop scenarios related to COVID-19 confinement measures to quantify country-sector-specific changes in freshwater consumption and the associated changes in biodiversity for the period of 2020–2025. The results suggest progressively diminishing impacts due to the implementation of COVID-19 vaccines and the socio-economic system’s self-adjustment to the new normal. In2020, the confinement measures were estimated to decrease global water consumption by about 5.7%on average across all scenarios when compared with the baseline level with no confinement measures.Further, such a decrease is estimated to lead to a reduction of around 5% in the related pressure on biodiversity. Given the interdependencies and interactions across global supply chains, even those countries and sectors that were not directly affected by the COVID-19 shocks experienced significant impacts: Our results indicate that the supply chain propagations contributed to 79% of the total estimated decrease in water consumption and 84% of the reduction in biodiversity loss on average. Our study demonstrates that the MRIO-enhanced DSPIR framework can help quantify resource pressures and the resultant environmental impacts across supply chains when facing a global emergency event. Further, we recommend the development of more locally based water conservation measures—to mitigate the effects of trade disruptions—and the explicit inclusion of water resources in post-pandemic recovery schemes. In addition,innovations that help conserve natural resources are essential for maintaining environmental gains in the post-pandemic world.

【基金】 supported by Aalto University and the Henan Provincial Key Laboratory of Hydrosphere and Watershed Water Security;provided by the National Natural Science Foundation of China (42361144001, 72304112, 72074136, and 72104129);the Key Program of International Cooperation, Bureau of International Cooperation, the Chinese Academy of Sciences (131551KYSB20210030)
  • 【文献出处】 Science Bulletin ,科学通报(英文) , 编辑部邮箱 ,2024年16期
  • 【分类号】X176;TV213.4
  • 【下载频次】37
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