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Alley Cropping Mitigates the Impacts of Climate Change on a Wheat Crop in a Mediterranean Environment: A Biophysical Model-Based Assessment

Author

Listed:
  • Francesco Reyes

    (National Research Institute for Agriculture, Food and the Environment (INRAE), University of Montpellier, 34060 Montpellier, France
    Dipartimento delle Culture Europee e del Mediterraneo: Architettura, Ambiente, Università degli Studi della Basilicata, 75100 Matera, Italy)

  • Marie Gosme

    (National Research Institute for Agriculture, Food and the Environment (INRAE), University of Montpellier, 34060 Montpellier, France)

  • Kevin J. Wolz

    (National Research Institute for Agriculture, Food and the Environment (INRAE), University of Montpellier, 34060 Montpellier, France
    Savanna Institute, Madison, WI 53715, USA)

  • Isabelle Lecomte

    (National Research Institute for Agriculture, Food and the Environment (INRAE), University of Montpellier, 34060 Montpellier, France)

  • Christian Dupraz

    (National Research Institute for Agriculture, Food and the Environment (INRAE), University of Montpellier, 34060 Montpellier, France)

Abstract

Introduction: Climate change (CC) and the increased occurrence of extreme climatic events pose a serious threat to crop yields and their stability worldwide. This study analyzed the CC mitigation potential of an alley cropping system on crop physiological stresses and growth as compared to a monoculture system. Materials and Methods: Growth of winter durum wheat, cultivated alone (agriculture) and in combination with hybrid walnut (agroforestry), was simulated with the Hi-sAFe agroforestry model, as driven by business-as-usual Intergovernmental Panel on Climate Change (IPCC) projections, split into three scenarios, representing Past (1951–1990), Present (1991–2030), and Future (2031–2070) climatic conditions. Crop growth and the occurrence of thermal, nitrogen, and water stresses were analyzed. Results: Cold-related stresses were modest in Past and almost disappeared over time. Heat, drought, and nitrogen stresses increased about twofold from Past to Future , but were reduced by 20–35% in agroforestry, already with medium-sized trees (diameter at breast height (DBH) of about 10–15 cm). Crop yields in agriculture increased from Past to the end of Present and then remained stable. This moderately decreased with tree age in agroforestry (especially in Future ). Discussion: The impact of CC on the crop was buffered in agroforestry, especially for the most extreme climatic events. The mitigation of crop microclimate and the increased stability of crop yields highlight the potential of agroforestry as a CC adaptation strategy.

Suggested Citation

  • Francesco Reyes & Marie Gosme & Kevin J. Wolz & Isabelle Lecomte & Christian Dupraz, 2021. "Alley Cropping Mitigates the Impacts of Climate Change on a Wheat Crop in a Mediterranean Environment: A Biophysical Model-Based Assessment," Agriculture, MDPI, vol. 11(4), pages 1-18, April.
  • Handle: RePEc:gam:jagris:v:11:y:2021:i:4:p:356-:d:536970
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    References listed on IDEAS

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    1. Mistry, Malcolm N. & Wing, Ian Sue & De Cian, Enrica, 2017. "Simulated vs. Empirical Weather Responsiveness of Crop Yields: U.S. Evidence and Implications for the Agricultural Impacts of Climate Change," EIA: Climate Change: Economic Impacts and Adaptation 263480, Fondazione Eni Enrico Mattei (FEEM).
    2. Bai, Wei & Sun, Zhanxiang & Zheng, Jiaming & Du, Guijuan & Feng, Liangshan & Cai, Qian & Yang, Ning & Feng, Chen & Zhang, Zhe & Evers, Jochem B. & van der Werf, Wopke & Zhang, Lizhen, 2016. "Mixing trees and crops increases land and water use efficiencies in a semi-arid area," Agricultural Water Management, Elsevier, vol. 178(C), pages 281-290.
    3. Miroslav Trnka & Reimund P. Rötter & Margarita Ruiz-Ramos & Kurt Christian Kersebaum & Jørgen E. Olesen & Zdeněk Žalud & Mikhail A. Semenov, 2014. "Adverse weather conditions for European wheat production will become more frequent with climate change," Nature Climate Change, Nature, vol. 4(7), pages 637-643, July.
    4. David S. Ellsworth & Ian C. Anderson & Kristine Y. Crous & Julia Cooke & John E. Drake & Andrew N. Gherlenda & Teresa E. Gimeno & Catriona A. Macdonald & Belinda E. Medlyn & Jeff R. Powell & Mark G. T, 2017. "Elevated CO2 does not increase eucalypt forest productivity on a low-phosphorus soil," Nature Climate Change, Nature, vol. 7(4), pages 279-282, April.
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