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Misestimation of water saving in agricultural virtual water trade by not considering the role of irrigation

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  • Cao, Xinchun
  • Cui, Simeng
  • Shu, Rui
  • Wu, Mengyang

Abstract

Water saving by agricultural virtual water trade (VWT) is regarded as a new way to address water shortage, and many studies have considered it at local and global scales. However, the existing calculation methods do not consider how agricultural products should be produced in export and import areas without crop trade. We believe that three facts related to irrigation should be considered in water saving in agricultural VWT evaluation: 1) arable land is highly restricted, 2) irrigation increases crop yield significantly, and 3) green water does not require cost. The role of irrigation, which is important for both the export and import region, is very important for determining how to cultivate crops without virtual water trade. In the case of grain VWT between Heilongjiang and Guangdong, China, the national blue water saving in 2010 with this consideration was −2562.1 Mm³ (water loss), whereas the figure was 975 Mm³ under the existing calculation framework. Therefore, there is a possibility that VWT can be used in agricultural development and water management decision-making while considering the role of irrigation.

Suggested Citation

  • Cao, Xinchun & Cui, Simeng & Shu, Rui & Wu, Mengyang, 2020. "Misestimation of water saving in agricultural virtual water trade by not considering the role of irrigation," Agricultural Water Management, Elsevier, vol. 241(C).
  • Handle: RePEc:eee:agiwat:v:241:y:2020:i:c:s0378377420310143
    DOI: 10.1016/j.agwat.2020.106355
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    1. Dalin, Carole & Qiu, Huanguang & Hanasaki, Naota & Mauzerall, Denise L. & Rodriguez-Iturbe, Ignacio, 2015. "Balancing water resources conservation and food security in China," LSE Research Online Documents on Economics 62725, London School of Economics and Political Science, LSE Library.
    2. Cai, X. & Rosegrant, M. W., 2003. "World water productivity: current situation and future options," Book Chapters,, International Water Management Institute.
    3. Aldaya, M.M. & Allan, J.A. & Hoekstra, A.Y., 2010. "Strategic importance of green water in international crop trade," Ecological Economics, Elsevier, vol. 69(4), pages 887-894, February.
    4. Wu, X.D. & Guo, J.L. & Han, M.Y. & Chen, G.Q., 2018. "An overview of arable land use for the world economy: From source to sink via the global supply chain," Land Use Policy, Elsevier, vol. 76(C), pages 201-214.
    5. Bazrafshan, Ommolbanin & Ramezani Etedali, Hadi & Gerkani Nezhad Moshizi, Zahra & Shamili, Mansoureh, 2019. "Virtual water trade and water footprint accounting of Saffron production in Iran," Agricultural Water Management, Elsevier, vol. 213(C), pages 368-374.
    6. Akoto-Danso, Edmund Kyei & Karg, Hanna & Drechsel, Pay & Nyarko, George & Buerkert, Andreas, 2019. "Virtual water flow in food trade systems of two West African cities," Agricultural Water Management, Elsevier, vol. 213(C), pages 760-772.
    7. Bazrafshan, Ommolbanin & Zamani, Hossein & Ramezanietedli, Hadi & Gerkaninezhad Moshizi, Zahra & Shamili, Mansoureh & Ismaelpour, Yahya & Gholami, Hamid, 2020. "Improving water management in date palms using economic value of water footprint and virtual water trade concepts in Iran," Agricultural Water Management, Elsevier, vol. 229(C).
    8. Fu, YiCheng & Zhao, Jinyong & Wang, Chengli & Peng, Wenqi & Wang, Qi & Zhang, Chunling, 2018. "The virtual Water flow of crops between intraregional and interregional in mainland China," Agricultural Water Management, Elsevier, vol. 208(C), pages 204-213.
    9. Cai, X. & Rosegrant, M. W., 2003. "World water productivity: current situation and future options," IWMI Books, Reports H032641, International Water Management Institute.
    10. Cao, Xinchun & Zeng, Wen & Wu, Mengyang & Guo, Xiangping & Wang, Weiguang, 2020. "Hybrid analytical framework for regional agricultural water resource utilization and efficiency evaluation," Agricultural Water Management, Elsevier, vol. 231(C).
    11. Boelens, Rutgerd & Vos, Jeroen, 2012. "The danger of naturalizing water policy concepts: Water productivity and efficiency discourses from field irrigation to virtual water trade," Agricultural Water Management, Elsevier, vol. 108(C), pages 16-26.
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    4. Xiuli Liu & Rui Xiong & Pibin Guo & Lei Nie & Qinqin Shi & Wentao Li & Jing Cui, 2022. "Virtual Water Flow Pattern in the Yellow River Basin, China: An Analysis Based on a Multiregional Input–Output Model," IJERPH, MDPI, vol. 19(12), pages 1-24, June.

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