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Effects of irrigation thresholds and temporal distribution on potato yield and water productivity in sandy soil

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  • Matteau, Jean-Pascal
  • Célicourt, Paul
  • Létourneau, Guillaume
  • Gumiere, Thiago
  • Gumiere, Silvio J.

Abstract

Water productivity enhancement in farming systems is one of the most critical challenges facing the agricultural sector in the twenty-first century. Precision irrigation based on soil matric potential (SMP) measurements effectively enhances water productivity. However, the temporal effect of an SMP-based comfort zone on potato crops is lacking. This paper evaluates the temporal effect of a range of soil matric potential thresholds (namely, −7, −10, −15, −18, −21, −24, −30, and −45 kPa) in a sandy soil on the marketable yield and irrigation water productivity (WP) of potato grown in containers in a greenhouse with the Partial Least Square algorithm (PLS) and a mixed model. The results of this study suggest that a comfort zone maximizing potato yield is located between − 10 and − 24 kPa. The − 24 kPa threshold generated the highest yield while reducing the irrigation water use up to 47% and generating the highest WP. The average yield in the comfort zone reached 496.4 g per plant, an increase of 88% over the lowest yield achieved at an SMP of –45 kPa. In addition, the leaf expansion and tuber initiation physiological stages are the most important periods where the daily SMP had the most influence on the marketable yield. This information will assist potato growers in maintaining high yields while optimizing their use of irrigation water.

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  • Matteau, Jean-Pascal & Célicourt, Paul & Létourneau, Guillaume & Gumiere, Thiago & Gumiere, Silvio J., 2022. "Effects of irrigation thresholds and temporal distribution on potato yield and water productivity in sandy soil," Agricultural Water Management, Elsevier, vol. 264(C).
  • Handle: RePEc:eee:agiwat:v:264:y:2022:i:c:s0378377422000300
    DOI: 10.1016/j.agwat.2022.107483
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    1. Darwish, T.M. & Atallah, T.W. & Hajhasan, S. & Haidar, A., 2006. "Nitrogen and water use efficiency of fertigated processing potato," Agricultural Water Management, Elsevier, vol. 85(1-2), pages 95-104, September.
    2. Wang, Feng-Xin & Kang, Yaohu & Liu, Shi-Ping & Hou, Xiao-Yan, 2007. "Effects of soil matric potential on potato growth under drip irrigation in the North China Plain," Agricultural Water Management, Elsevier, vol. 88(1-3), pages 34-42, March.
    3. Molden, David & Oweis, Theib & Steduto, Pasquale & Bindraban, Prem & Hanjra, Munir A. & Kijne, Jacob, 2010. "Improving agricultural water productivity: Between optimism and caution," Agricultural Water Management, Elsevier, vol. 97(4), pages 528-535, April.
    4. Matteau, J.-P. & Gumiere, S.J. & Gallichand, J. & Létourneau, G. & Khiari, L. & Gasser, M.-O. & Michaud, A., 2019. "Coupling of a nitrate production model with HYDRUS to predict nitrate leaching," Agricultural Water Management, Elsevier, vol. 213(C), pages 616-626.
    5. Kijne, J. W. & Barker, R. & Molden. D., 2003. "Water productivity in agriculture: limits and opportunities for improvement," IWMI Books, Reports H032631, International Water Management Institute.
    6. Yactayo, Wendy & Ramírez, David A. & Gutiérrez, Raymundo & Mares, Víctor & Posadas, Adolfo & Quiroz, Roberto, 2013. "Effect of partial root-zone drying irrigation timing on potato tuber yield and water use efficiency," Agricultural Water Management, Elsevier, vol. 123(C), pages 65-70.
    7. Hanjra, Munir A. & Qureshi, M. Ejaz, 2010. "Global water crisis and future food security in an era of climate change," Food Policy, Elsevier, vol. 35(5), pages 365-377, October.
    8. Kijne, Jacob W. & Barker, Randolph & Molden, David J. (ed.), 2003. "Water productivity in agriculture: limits and opportunities for improvement," IWMI Books, International Water Management Institute, number 138054.
    9. Létourneau, Guillaume & Caron, J. & Anderson, L. & Cormier, J., 2015. "Matric potential-based irrigation management of field-grown strawberry: Effects on yield and water use efficiency," Agricultural Water Management, Elsevier, vol. 161(C), pages 102-113.
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    1. Xiao, Chao & Ji, Qingyuan & Zhang, Fucang & Li, Yi & Fan, Junliang & Hou, Xianghao & Yan, Fulai & Liu, Xiaoqiang & Gong, Kaiyuan, 2023. "Effects of various soil water potential thresholds for drip irrigation on soil salinity, seed cotton yield and water productivity of cotton in northwest China," Agricultural Water Management, Elsevier, vol. 279(C).

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