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Climate change vulnerability assessment for selected agricultural responses at Yarmouk River Basin Area, Jordan

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Abstract

Although climate change impacts on the agricultural sector were investigated intensively, however, vulnerability assessments and adaptation planning at the community level are still limited. This study aimed at providing a comprehensive climate change vulnerability assessment of four agriculture responses of barley production, wheat production, olive trees production, and goats’ mortality at the Yarmouk River Basin in northern Jordan using a qualitative-quantitative scoring method based on actual estimations of exposure, sensitivity, and adaptive capacity with an emphasis on community engagement. Thirty-year temporal variability (1982–2012) analysis using Kendall test and Pearson correlation test for three climatic variables (maximum and minimum air temperature, and annual rainfall) indicates high significant exposure level of increasing air temperature trends by rates of 0.07 °C/year and 0.06 °C/year for maximum and minimum temperature, respectively, and insignificant annual rainfall reductions ranging spatially from 2.1 mm/year at Irbid governorate to 2.9 mm/year at Mafraq Governorate. Agriculture responses sensitivity assessment indicates goats’ mortality followed by olive production are moderately correlated with climate variables (r ranges from 0.32 to 0.57). The adaptive capacity assessment highlights the presence of low to moderate financial, institutional, political enforcement, technology implementation, and awareness of the farmers to climate change impacts and potential adaptation measures that subjected the study area to be ranked as moderately to highly vulnerable to climate change impacts. Multi-criteria decision analysis suggests that irrigation water-related adaptation measures are listed within top priorities. This paper addresses the qualitative-quantitative vulnerability assessment approach at the local rural level and through participatory engagements to be effective for improving the vulnerable adaptive capacities and suggesting further recommendations to be mainstreamed urgently with governmental strategies and action plans.

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References

  • Aladaileh H, Al Qinna M, Karoly B, Al-Karablieh E, Rakonczai J (2019a) An investigation into the spatial and temporal variability of the meteorological drought in Jordan. Climate 7(82):1–25. https://doi.org/10.3390/cli7060082

    Article  Google Scholar 

  • Aladaileh H, Al Qinna M, Karoly B, Al-Karablieh E, Al Bakri J, Rakonczai J (2019b) Applicability of a combined drought index to monitoring drought in Jordan. Journal of Engineering Research and Application 9(7) (Series -VI) July 2019:20–39. https://doi.org/10.9790/9622-090706203920|Pa

    Article  Google Scholar 

  • Aladaileh H, Al Qinna M, Karoly B, Al-Karablieh E, Rakonczai J, Alobeiaat A (2019c) A drought adaptation management system for groundwater resources based on combined drought index and vulnerability analysis. Earth Systems and Environment 3:445–461. https://doi.org/10.1007/s41748-019-00118-9

    Article  Google Scholar 

  • Al-Bakri J, Suleiman A, Abdulla F, Ayad J (2011) Potential impact of climate change on rainfed agriculture of a semi-arid basin in Jordan. Physics and Chemistry of the Earth, Parts A/B/C 36(5–6):125–134. https://doi.org/10.1016/j.pce.2010.06.001

    Article  Google Scholar 

  • Al-Mashagbah A, Al-Farajat M (2013) Assessment of spatial and temporal variability of rainfall data using kriging, Mann Kendall test and the Sen’s slope estimates in Jordan from 1980 to 2007. Research Journal of Environmental and Earth Sciences 5(10):611–618

    Article  Google Scholar 

  • Al-Naber G, Al-Bakri J, Saba M (2009) Monitoring drought and desertification in Jordan with remote sensing. In Proceedings of the remote sensing and GIS applications symposium(Vol.20).availableat:https://www.researchgate.net/publication/327238416_Monitoring_Drought_and_Desertification_in_Jordan_with_Remote_Sensing_Proceeding_of_The_Remote_Sensing_GIS_Application_Symposium_Geography_Department_UOJ_Amman_Jordan_20_April_2009_pp53-61

  • Al-Qinna MI (2018) Analyses of climate variability in Jordan using topographic auxiliary variables by the Cokriging technique. Jordan Journal of Earth and Environmental Sciences, 9(1).available at: http://jjees.hu.edu.jo/files/Vol9N1/JJEES_Vol9_N1_HQ_P9.pdf

  • Al-Qinna MI, Hammouri NA, Obeidat MM, Ahmad FY (2011) Drought analysis in Jordan under current and future climates. Clim Chang 106(3):421–440

    Article  Google Scholar 

  • Al-Qudah KA, Smadi AA (2011) Trends in maximum daily rainfall in marginal desert environment: signs of climate change. American Journal of Environmental Sciences 7(4):331–337. https://doi.org/10.3844/ajessp.2011.331.337

    Article  Google Scholar 

  • Al-Taani AA (2013) Seasonal variations in water quality of Al-Wehda Dam north of Jordan and water suitability for irrigation in summer. Arab J Geosci 6(4):1131–1140

    Article  Google Scholar 

  • Dahamsheh A, Aksoy H (2007) Structural characteristics of annual rainfall data in Jordan. Theor Appl Climatol 88(3–4):201–212

    Article  Google Scholar 

  • Department of Statistics (2017) Agricultural Statistics. Department of Statistics, Amman Jordan

  • Department of Statistics (2020a) Unemployment rate during the second quarter of 2020. Department of statistics, Amman, Jordan. Available at http://dosweb.dos.gov.jo/23-0-unemployment-rate-during-the-second-quarter-of-2020/

  • Department of Statistics (2020b) Poverty statistics, Department of statistics, Amman, Jordan. Available at http://dosweb.dos.gov.jo/population/poverty/

  • Dong Z, Pan Z, An P, Wang L, Zhang J, He D, Han H, Pan X (2015) A novel method for quantitatively evaluating agricultural vulnerability to climate change. Ecol Indic 48:49–54

    Article  Google Scholar 

  • Drine I (2011) Climate change compounding risks in North Africa (No. 2011/32). WIDER Working Paper

  • European Environmental Agency (2019) Indicator Assessment . Data and maps Global and European temperature. Available at: https://www.eea.europa.eu/data-and-maps/indicators/global-and-european-temperature-9/assessment

  • Ezra CA (2016) Climate change vulnerability assessment in the agriculture sector: typhoon Santi experience. Procedia Soc Behav Sci 216:440–451

    Article  Google Scholar 

  • FAO (2018) The State of Food Security and Nutrition in the World 2018. Building Climate Resilience for Food Security and Nutrition. Rome: Food and Agriculture Organization of the United Nations.available at: http://www.fao.org/3/i9553en/i9553en.pdf

  • Field CB (2014) Climate change 2014–impacts, adaptation and vulnerability: regional aspects. Cambridge University Press

  • Freiwan M, Kadioǧlu M (2008) Climate variability in Jordan. International Journal of Climatology: A Journal of the Royal Meteorological Society 28(1):69–89. https://doi.org/10.1002/joc.1512

    Article  Google Scholar 

  • Ghanem AA (2011) Climatology of the areal rainfall in Amman/Jordan. Int J Climatol 31(9):1328–1333

    Article  Google Scholar 

  • Hammouri N, Adamowski J, Freiwan M, Prasher S (2016) Climate change impacts on surface water resources in arid and semi-arid regions: a case study in northern Jordan. Acta Geodaetica et Geophysica 52(1):141–156

    Article  Google Scholar 

  • Harvey CA, Rakotobe ZL, Rao NS, Dave R, Razafimahatratra H, Rabarijohn RH, Rajaofara H, MacKinnon JL (2014) Extreme vulnerability of smallholder farmers to agricultural risks and climate change in Madagascar. Philosophical Transactions of the Royal Society B: Biological Sciences 369(1639):20130089

    Article  Google Scholar 

  • Hussein H (2017) Whose ‘reality’? Discourses and hydropolitics along the Yarmouk River. Contemporary Levant 2(2):103–115. https://doi.org/10.1080/20581831.2017.1379493

    Article  Google Scholar 

  • Hussein H, Grandi M (2015) Contexts matter: a hydropolitical analysis of Blue Nile and Yarmouk River basins. Social water studies in the Arab Region 159

  • Hussein H., and Grandi M. (2017). Dynamic political contexts and power asymmetries: the cases of the Blue Nile and the Yarmouk Rivers. Int Environ Agreements (2017) 17:795–814 DOI https://doi.org/10.1007/s10784-017-9364-y

  • IPCC (2007) Summary for policymakers. In: Parry ML, Canziani OF, Palutikof JP, Linden PJ, Hanson CE (eds) Climate Change 2007: Impacts, Adaptation and Vulnerability. Contribution of Working Group II tothe Fourth Assessment Report of the Intergovernmental Panel on Climate Change, vol 4. Cambridge University Press

  • IPCC (2013) Climate change: The Physical Science Basis In Long-term climate change: projections, commitments and irreversibility. In: Collins M, Knutti R, Arblaster J, Dufresne JL, Fichefet T, Friedlingstein P, Gao X, Gutowski WJ, Johns T, Krinner G, Shongwe M (eds) Contribution of working group I to the Fifth assessment report of the intergovernmental panel on climate change. Cambridge University Press, pp 1029–1136

  • IPCC (2014) Climate change 2014: synthesis report. In: Core writing team, Pachauri RK, Meyer LA (eds) Contribution of Working Groups I, II and III to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. IPCC, Geneva 151 pp

    Google Scholar 

  • Jamshidi O, Asadi A, Kalantari K, Azadi H, Scheffran J (2019) Vulnerability to climate change of smallholder farmers in the Hamadan province, Iran. Clim Risk Manag 23:146–159

    Article  Google Scholar 

  • Khresat S (2016, April) Practicing conservation agriculture to mitigate and adapt to climate change in Jordan. In EGU General Assembly Conference Abstracts 18

  • Khresat SE, Shraidaeh F, Maddat A (2015, April) Assessing the vulnerability of agriculture to climate change in Jordan. In EGU General Assembly Conference Abstracts 17

  • Li X, Philp J, Cremades R, Roberts A, He L, Li L, Yu Q (2016) Agricultural vulnerability over the Chinese Loess Plateau in response to climate change: exposure, sensitivity, and adaptive capacity. Ambio 45(3):350–360

    Article  Google Scholar 

  • Luers AL, Lobell DB, Sklar LS, Addams CL, Matson PA (2003) A method for quantifying vulnerability, applied to the agricultural system of the Yaqui Valley, Mexico. Glob Environ Chang 13(4):255–267

    Article  Google Scholar 

  • Ministry of Environment (2013) Climate change policy of Jordan. Amman, Jordan

    Google Scholar 

  • Ministry of Environment (2014). Third National Communication to the United Nations Framework Convention on Climate Change (UNFCCC). Ministry of Environment, Amman, Jordan, 281pp available at: https://www.undp.org/content/dam/jordan/docs/Publications/Enviro/TNC%20jordan%20pdf.pdf

  • Ministry of Environment (2020) National adaptation plan to climate change in Jordan. GIZ, Amman, Jordan

  • Mohammad AH, Jung HC, Odeh T, Bhuiyan C, Hussein H (2018) Understanding the impact of droughts in the Yarmouk Basin, Jordan: monitoring droughts through meteorological and hydrological drought indices. Arab J Geosci 11.5(2018):103. https://doi.org/10.1007/s12517-018-3433-6

    Article  Google Scholar 

  • Morton JF (2007) The impact of climate change on smallholder and subsistence agriculture. Proc Natl Acad Sci 104(50):19680–19685

    Article  Google Scholar 

  • Odeh T, Mohammad AH, Hussein H, Ismail M, Almomani T (2019) Over-pumping of groundwater in Irbid governorate, northern Jordan: a conceptual model to analyze the effects of urbanization and agricultural activities on groundwater levels and salinity. Environ Earth Sci 78:40. https://doi.org/10.1007/s12665-018-8031-0

    Article  Google Scholar 

  • Porter JR, Xie L, Challinor A, et al. (2014) Food security and food production systems. In: Field CB, Barros VR, Dokken DJ,et al. (eds) Climate Change 2014: impacts, adaptation, and vulnerability. Cambridge, United Kingdom and New York,USA: CUP, pp. 485–533

  • RICCAR ,Regional Initiative for the Assessment of Climate Change Impacts on Water Resources and Socio-Economic Vulnerability in the Arab Region (2017) Arab Climate Change Assessment Report.availableat:https://reliefweb.int/sites/reliefweb.int/files/resources/riccar_main_report_2017.pdf

  • Schilling J, Freier KP, Hertig E, Scheffran J (2012) Climate change, vulnerability and adaptation in North Africa with focus on Morocco. Agric Ecosyst Environ 156:12–26

    Article  Google Scholar 

  • Schröter D, Acosta-Michlik L, Arnell AW, Araújo MB, Badeck F, Bakker M, Bondeau A, Brugmann H, Carter T, De la Leinert AV, Erhard M (2004) Advanced terrestrial ecosystem analysis and modelling (ATEAM). In: Potsdam Institute for Climate Impact Research (PIK) available at: https://library.wur.nl/WebQuery/wurpubs/reports/335678

    Google Scholar 

  • Selby J (2003) Dressing up domination as‘cooperation’: the case of Israeli-Palestinian water relations. Rev Int Stud 29(1):121–138

    Article  Google Scholar 

  • Selby J, Dahi OS, Fröhlich C, Hulme M (2017) Climate change and the Syrian civil war revisited. Polit Geogr 60:232–244

    Article  Google Scholar 

  • Statistical Analysis System (2011) JMP version 8.0 statistical discovery software. SAS Inc., Cary

  • Steiner JL, Briske DD, Brown DP, Rottler CM (2018) Vulnerability of Southern Plains agriculture to climate change. Clim Chang 146(1–2):201–218

    Article  Google Scholar 

  • Talozi S, Altz-Stamm A, Hussein H, Reich P (2019) What constitutes an equitable water share? A reassessment of equitable apportionment in the Jordan-Israel water agreement 25 years later. Water Policy 21:911–933

    Article  Google Scholar 

  • Tapia C, Abajo B, Feliu E, Mendizabal M, Martinez JA, Fernández JG, Laburu T, Lejarazu A (2017) Profiling urban vulnerabilities to climate change: an indicator-based vulnerability assessment for European cities. Ecol Indic 78:142–155

    Article  Google Scholar 

  • Wang Z, Li J, Lai C, Wang RY, Chen X, Lian Y (2018) Drying tendency dominating the global grain production area. Global food security 16:138–149

    Article  Google Scholar 

  • Wiréhn L, Danielsson Å, Neset TSS (2015) Assessment of composite index methods for agricultural vulnerability to climate change. J Environ Manag 156:70–80

    Article  Google Scholar 

  • Zeitoun M, Abdallah C, Dajani M, Khresat S, Elaydi H, Alfarra A (2019a) The Yarmouk tributary to the Jordan River I: agreements impeding equitable transboundary water arrangements. Water Alternatives 12(3):1064–1094

    Google Scholar 

  • Zeitoun M, Abdallah C, Dajani M, Khresat S, Elaydi H (2019b) The Yarmouk tributary to the Jordan River II: infrastructure impeding the transformation of equitable transboundary water arrangements. Water Alternatives 13(3)

  • Zeitoun M, Mirumachi N, Warner J, Kirkegaard M, Cascão A (2019c) Analysis for water conflict transformation. Water Int

  • Žurovec O, Čadro S, Sitaula B (2017) Quantitative assessment of vulnerability to climate change in rural municipalities of Bosnia and Herzegovina. Sustainability 9(7):1208

    Article  Google Scholar 

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I would like to thank Jordan University of Science and Technology for funding the research.

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Correspondence to Ayat Al Qudah.

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Al Qudah, A., Rusan, M.J., Al-Qinna, M.I. et al. Climate change vulnerability assessment for selected agricultural responses at Yarmouk River Basin Area, Jordan. Mitig Adapt Strateg Glob Change 26, 3 (2021). https://doi.org/10.1007/s11027-021-09944-7

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