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Biophysical and hydrological effects of future climate change including trends in CO2, in the St. Joseph River watershed, Eastern Corn Belt

Author

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  • Wang, Ruoyu
  • Bowling, Laura C.
  • Cherkauer, Keith A.
  • Cibin, Raj
  • Her, Younggu
  • Chaubey, Indrajeet

Abstract

Future climate change has the potential to significantly impact crop growth, both directly due to CO2 enhancement and indirectly, through temperature and moisture impacts. This work investigates the biophysical and hydrological effects of future climate change, including trends in CO2, in the St. Joseph River watershed, Eastern Corn Belt. In this study, the Soil and Water Assessment Tool (SWAT) was first modified to take dynamic CO2 concentration as input. A regional crop leaf development curve from Landsat TM imagery was also used to adjust model performance in corn leaf area development for the historical period. A multi-objective calibration strategy was employed to ensure acceptable simulation of streamflow, seasonal crop growth and interannual crop yield simultaneously. The model was then driven by future climate change and CO2 data from three Atmosphere-Ocean General Circulation Models (AOGCMs), which are GFDL-CM2.1.1, NCAR-PCM1.3, and UKMO-HADCM3.1, under three Special Report on Emissions Scenarios (SRES), including B1, A1B and A2 to investigate crop and streamflow response in two future periods: the near future (2021–2050) and the far future (2061–2090). The St. Joseph River watershed is expected to experience more winter and spring precipitation, but slightly decreasing summer precipitation. Due to increasing temperature and decreasing summer moisture, more drought stress is predicted. Both annual total aeration and drought stress are projected to be more variable in both future periods. Although future CO2 enhancement will benefit the crop growth and final yield by improving radiation use efficiency (RUE) and reducing drought stresses, simulated corn yield still decreased by 6% in the near future period, and 16% in the far future period due to the combined effect of both climate change and CO2 enhancement. Streamflow redistribution is also predicted in the future. Stream discharge is projected to increase for the whole flow range in the near future period. For the far future period, high flows are expected to decrease, while low flows are expected to increase, indicating more hydrologic drought and flood events in the St. Joseph River watershed.

Suggested Citation

  • Wang, Ruoyu & Bowling, Laura C. & Cherkauer, Keith A. & Cibin, Raj & Her, Younggu & Chaubey, Indrajeet, 2017. "Biophysical and hydrological effects of future climate change including trends in CO2, in the St. Joseph River watershed, Eastern Corn Belt," Agricultural Water Management, Elsevier, vol. 180(PB), pages 280-296.
  • Handle: RePEc:eee:agiwat:v:180:y:2017:i:pb:p:280-296
    DOI: 10.1016/j.agwat.2016.09.017
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    1. Philip McMichael, 2009. "A food regime analysis of the ‘world food crisis’," Agriculture and Human Values, Springer;The Agriculture, Food, & Human Values Society (AFHVS), vol. 26(4), pages 281-295, December.
    2. Malcolm, Scott A. & Marshall, Elizabeth P. & Aillery, Marcel P. & Heisey, Paul W. & Livingston, Michael J. & Day-Rubenstein, Kelly A., 2012. "Agricultural Adaptation to a Changing Climate: Economic and Environmental Implications Vary by U.S. Region," Economic Research Report 127734, United States Department of Agriculture, Economic Research Service.
    3. Yang, J.M. & Yang, J.Y. & Liu, S. & Hoogenboom, G., 2014. "An evaluation of the statistical methods for testing the performance of crop models with observed data," Agricultural Systems, Elsevier, vol. 127(C), pages 81-89.
    4. Palazzoli, I. & Maskey, S. & Uhlenbrook, S. & Nana, E. & Bocchiola, D., 2015. "Impact of prospective climate change on water resources and crop yields in the Indrawati basin, Nepal," Agricultural Systems, Elsevier, vol. 133(C), pages 143-157.
    5. Donald Wuebbles & Katharine Hayhoe, 2004. "Climate Change Projections for the United States Midwest," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 9(4), pages 335-363, October.
    6. Stockle, Claudio O. & Williams, Jimmy R. & Rosenberg, Norman J. & Jones, C. Allan, 1992. "A method for estimating the direct and climatic effects of rising atmospheric carbon dioxide on growth and yield of crops: Part I--Modification of the EPIC model for climate change analysis," Agricultural Systems, Elsevier, vol. 38(3), pages 225-238.
    7. Gassman, Philip W. & Reyes, Manuel R. & Green, Colleen H. & Arnold, Jeffrey G., 2007. "The Soil and Water Assessment Tool: Historical Development, Applications, and Future Research Directions," ISU General Staff Papers 200701010800001027, Iowa State University, Department of Economics.
    8. Yiping Wu & Shuguang Liu & Omar Abdul-Aziz, 2012. "Hydrological effects of the increased CO 2 and climate change in the Upper Mississippi River Basin using a modified SWAT," Climatic Change, Springer, vol. 110(3), pages 977-1003, February.
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    2. Yaoze Liu & Sisi Li & Carlington W. Wallace & Indrajeet Chaubey & Dennis C. Flanagan & Lawrence O. Theller & Bernard A. Engel, 2017. "Comparison of Computer Models for Estimating Hydrology and Water Quality in an Agricultural Watershed," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 31(11), pages 3641-3665, September.
    3. Xue, Jingyuan & Huo, Zailin & Kisekka, Isaya, 2021. "Assessing impacts of climate variability and changing cropping patterns on regional evapotranspiration, yield and water productivity in California’s San Joaquin watershed," Agricultural Water Management, Elsevier, vol. 250(C).
    4. Chen, Yong & Marek, Gary W. & Marek, Thomas H. & Moorhead, Jerry E. & Heflin, Kevin R. & Brauer, David K. & Gowda, Prasanna H. & Srinivasan, Raghavan, 2019. "Simulating the impacts of climate change on hydrology and crop production in the Northern High Plains of Texas using an improved SWAT model," Agricultural Water Management, Elsevier, vol. 221(C), pages 13-24.

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    Keywords

    SWAT; Climate change; CO2; Crop modeling; Hydrology;
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