Impacts of Climate Variability on Maize and Its Adaptation Practices in Bedele District, Southwestern Ethiopia

Authors

  • kalifa Mohammed Bedelle Agricultural office
  • dessalegn worku Wallaga university
  • Megerse Hundera Wollega University image/svg+xml

DOI:

https://doi.org/10.20372/afnr.v3iI.1407

Abstract

Climate change and variability are real global phenomena affecting agriculture, health, water resources, and the environment. This research examines the Effect of Climate Variability on Maize Yield and Household Adaptation Practices in Bedele District, focusing on climate trends, impacts on maize yields, and factors influencing adaptation strategies. Using tools like R insat (7.16), XLSTAT (2018), and Stata (13), data were analyzed from the Ethiopian Meteorology Institute (EMI) and Woreda Agricultural Office. Results showed high variability in monthly, belg, and bega rainfall, while annual and kremt rainfall were less variable. The onset of rainfall (93.3%) occurred in April, and 63.3% of end dates fell in November, with less variability in the length of the growing period (LGP). Temperature analyses confirmed minimal variability in monthly, annual, and seasonal temperatures. Regression analyses indicated that the start of the season (SOS), end of the season (EOS), LGP, and kremt rainfall negatively impacted maize yields. Effective adaptation strategies identified included crop diversification, tree planting, irrigation, improved crop varieties, and soil water conservation. These were influenced by factors such as education, farm income, land size, credit access, and climate training. For example, education positively affected crop variety adoption and soil water conservation, while credit access negatively impacted tree planting. Policymakers and farmers should align practices with climate patterns, optimizing onset and end dates for better crop production. Promoting education, extension services, and access to climate training is essential to enhance adaptation strategies.

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Author Biography

kalifa Mohammed , Bedelle Agricultural office

Kalifa is from Bedelle Agricultural office and is msc in climate change and  sustainable agriculture 

References

Aemro, T., Jemma, H., & Mengistu , K. (2012). Climate change adaptation strategies of smallholder farmers: the case of Babilie District, East Harerghe Zone of Oromia Regional State of Ethiopia. Journal of Economics and Sustainable Development, 3(14), 1-12

Agnew, C. T., & Chappel, A. (1999). Geostatical analysis and numerical simulation of West African Sahel rainfall. Land degradation: Papers selected from contributions to the sixth meeting of the International Geographical Union’s Commission on land degradation and desertification, 20-26.

Ahmed, B., Haji, J., Ketema, M., & Jemal, K. (2023). Impacts and adaptation extents of climate smart agricultural practices among smallholder farmers of Ethiopia: Implications to food and nutrition security. Cogent Economics & Finance, 11(1), 2210911.

Arragaw, A., & Woldeamlak, B. (2017). Local spatiotemporal variability and trends in rainfall and temperature in the central highlands of Ethiopia. Geografiska Annaler: Series A, Physical Geography, 99(2), 85-101.

Assan, E., Suvedi, M., Schmitt Olabisi, L., & Allen, A. (2018). Coping with and adapting to climate change: A gender perspective from smallholder farming in Ghana. Environments, 5(8), 86.

Atomsa, G. A., & Zhou, Y. (2023). Application of neural network to model rainfall pattern of Ethiopia. Statistical Theory and Related Fields, 7(1), 69-84.

Ayalew, D., Tesfaye, K., Mamo, G., Yitaferu, B., &Bayu, W. (2012). Variability of rainfall and its current trend in Amhara region, Ethiopia. African Journal of Agricultural Research, 7(10), 1475-1486.

Belay, A., Recha, J. W., Woldeamanuel, T., & Morton, J. F. (2017). Smallholder farmers’ adaptation to climate change and determinants of their adaptation decisions in the Central Rift Valley of Ethiopia. Agriculture & Food Security, 6(1), 1-13.

BWAO (BedeleWoreda Agricultural Office) (2023). Annual and seasonal report.

Conway, D., & Schipper, E. L. F. (2011). Adaptation to climate change in Africa: Challenges and opportunities identified from Ethiopia. Global environmental change, 21(1), 227-237.

Daba, M. H. (2018). Assessing local community perceptions on climate change and variability and its effects on crop production in selected districts of western Oromia, Ethiopia. J. Climatol. Weather Forecasting, 6(1), 1-8.

FAO (2010). FAO statistical data base.Rome.

FAO (2017). The State of Food Security and Nutrition in the World; Building Resilience for Peace and Food Security; FAO: Rome, Italy.

FAO (2018). Food Loss Analysis: Causes and Solutions; FAO: Rome, Italy

Federal Democratic Republic of Ethiopia: Plan and Development Commission (FDRE-PDC). Ten Years Development Plan: Path Way to Prosperity 2021-2030: Plan and Development Commission, Addis Ababa, Ethiopia (2020)

Fenech, K., Schembri, S., & Zammit, G. (2018). Maltese microalgae and global climate variability.

Feng, G., Cobb, S., Abdo, Z., Fisher, D. K., Ouyang, Y., Adeli, A., & Jenkins, J. N. (2016). Trend analysis and forecast of precipitation, reference evapotranspiration, and rainfall deficit in the Blackland Prairie of Eastern Mississippi. Journal of Applied Meteorology and Climatology, 55(7), 1425-1439.

Gebrehaweria Gebregziabhe, Rebelo, L.M. & Langan, S. (2016). Interdependence in rainwater management technologies: an analysis of rainwater management adoption in the Blue Nile Basin. Environment, Development, and Sustainability, 18(2): 449

Gemachu, R & Melkamu.D. (2022). Analyzing over all chance of rainfall and rainfall anomaly in west Oromia, Ethiopia.

Hare, W. (2003). Assessment of Knowledge on Impacts of Climate Change Contribution. Arctic, 100(6).

Hatfield, J. L. & Prueger, J. H. (2011), “Spatial and temporal variation in evapotranspiration”, In Gerosa, G.(ed.) Evapotranspiration - from measurements to agricultural and environmental applications, InTech, pp. 410.

Kassie, B. T., Van Ittersum, M. K., Hengsdijk, H., Asseng, S., Wolf, J., & Rötter, R. P. (2014). Climate-induced yield variability and yield gaps of maize (Zea mays L.) in the Central Rift Valley of Ethiopia. Field Crops Research, 160, 41-53.

Korecha, D., & Barnston, A. G. (2007). Predictability of june–september rainfall in Ethiopia. Monthly weather review, 135(2), 628-650.

Li, Y., Guan, K., Schnitkey, G. D., DeLucia, E., & Peng, B. (2019). Excessive rainfall leads to maize yield loss of a comparable magnitude to extreme drought in the United States. Global change biology, 25(7), 2325-2337.

Lobell, D. B., Bänziger, M., Magorokosho, C., & Vivek, B. (2011). Nonlinear heat effects on African maize as evidenced by historical yield trials. Nature Climate Change, 1(1), 42-45.

Love, W., Savinov, V., Mendez, H., Ge, J. Y., Miller, D. H., Shipsey, I. P. J., ... & (CLEO Collaboration). (2008). Search for very light CP-odd Higgs boson in radiative decays of Υ (1 S). Physical review letters, 101(15), 151802.

Mahmood, R., Jia, S., & Zhu, W. (2019). Analysis of climate variability, trends, and prediction in the most active parts of the Lake Chad basin, Africa. Scientific reports, 9(1), 6317.

Mann, H. B. (1945). Nonparametric tests against trend. Econometrica: Journal of the Econometric Society, 245-259.

Matewos, T. (2019). Climate change-induced impacts on smallholder farmers in selected districts of Sidama, Southern Ethiopia. Climate, 7(5), 70.

McKee, T. B., Doesken, N. J., & Kleist, J. (1993). The relationship of drought frequency and duration to time scales. In Proceedings of the 8th Conference on Applied Climatology Vol 17, No. 22, pp. 179-183.

Mondal, A., Kundu, S., &Mukhopadhyay, A. (2012). Rainfall trend analysis by Mann-Kendall test: A case study of north-eastern part of Cuttack district, Orissa. International Journal of Geology, Earth and Environmental Sciences, 2(1), 70-78.

Orke, Y. A., & Li, M. H. (2021). Hydroclimatic variability in the bilate watershed, Ethiopia. Climate, 9(6), 98.

Palmer, P. I., Wainwright, C. M., Dong, B., Maidment, R. I., Wheeler, K. G., Gedney, N., ... & Turner, A. G. (2023). Drivers and impacts of Eastern African rainfall variability. Nature Reviews Earth & Environment, 4(4), 254-270.

Tesfaye, K., Gbegbelegbe, S., Cairns, J. E., Shiferaw, B., Prasanna, B. M., Sonder, K., ... & Robertson, R. (2015). Maize systems under climate change in sub-Saharan Africa: Potential impacts on production and food security. International Journal of Climate Change Strategies and Management, 7(3), 247-271.

Tigchelaar, M., Battisti, D. S., Naylor, R. L., & Ray, D. K. (2018). Future warming increases probability of globally synchronized maize production shocks. Proceedings of the National Academy of Sciences, 115(26), 6644-6649.

Tolera, K., Azmach, G., Wegary, D., Worku, M., Tadesse, B., Wolde, L., ... & Suresh, M. (2018). Major biotic maize production stresses in Ethiopia and their management through host resistance. Afr J Agric Res 13 (21): 1042–1052.

Tolosa, A. A., Dadi, D. K., Mirkena, L. W., Erena, Z. B., & Liban, F. M. (2023). Impacts of climate variability and change on sorghum crop yield in the babile district of eastern Ethiopia. Climate, 11(5), 99.

Wang, L., Liu, H. L., Bao, A. M., Pan, X. L., & Chen, X. (2016). Estimating the sensitivity of runoff to climate change in an alpine-valley watershed of Xinjiang, China. Hydrological Sciences Journal, 61(6), 1069-1079.

Yamane, T. (1967). Statistics, An Introductory Analysis, 2nd Ed., New York.

Zewdu, T. (2005). Variation in growth, yield, chemical composition and in vitro dry matter digestibility of Napier grass accessions (Pennisetum purpureum). Tropical Science, 45(2), 67-73.

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Published

30.04.2025

How to Cite

Mohammed , kalifa, worku, dessalegn, & Hundera, M. (2025). Impacts of Climate Variability on Maize and Its Adaptation Practices in Bedele District, Southwestern Ethiopia. Journal of Agriculture, Food and Natural Resources, 3(I), 18–30. https://doi.org/10.20372/afnr.v3iI.1407

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