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Urban flood vulnerability assessments: the case of Dire Dawa city, Ethiopia

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Abstract

Dire Dawa city is identified as one of the most flood-affected cities in Ethiopia. Classifying village-level flood vulnerability using flood indicators is a new approach to Dire Dawa city. Analysis of different flood vulnerability factors underpins sustainable flood risk management and the application of Flood Vulnerability Index (FVI) approach is the hub of this study. Relevant data were collected from 110 households sampled from purposely selected 10 villages found in Dire Dawa city. The flood vulnerability index was used to compare, classify and rank villages in terms of their flood vulnerability levels. For this purpose, 24 sets of indicators which are strongly affecting the levels of flood vulnerability were assessed from social, economic and physical perspectives. The FVI of each village was computed with unequal method of weighting indicators. The findings of the study revealed that Dire Dawa city villages were experiencing varying levels of flood vulnerability. Accordingly, villages 05, 06, 07 and 09 were identified with high flood vulnerability level while villages 03, 04 and 08 and villages 01, 02 and extension village were identified with medium and low level of vulnerability, respectively. Interestingly, the findings of the study confirmed that social factors contributed much for flood vulnerability in Dire Dawa city. Hence, future urban flood risk planning and management endeavors in the city of Dire Dawa must be underpinned by proper utilization of the flood vulnerability map developed addressing social vulnerability component through both structural and non-structural urban flood risk management measures.

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References

  • Adelekan IO (2011) Vulnerability assessment of an urban flood in Nigeria: Abeokuta flood 2007. Nat Hazards 56(1):215–231

    Article  Google Scholar 

  • Adger WN, Brooks N, Bentham G, Agnew M, Eriksen S (2005) New indicators of vulnerability and adaptive capacity. Tyndall Centre for Climate Change Research, Norwich

    Google Scholar 

  • Alemu YT (2015) Flash flood hazard in Dire Dawa, Ethiopia. J Soc Sci Humanit 1(4):400–414

    Google Scholar 

  • Balaban-Şenol M (2009) Risk society and planning: the case of flood disaster management in Turkish cities. Unpublished Ph.D. Thesis, Middle East Technical University, Ankara, Turkey

  • Balica S, Wright NG (2009) A network of knowledge on applying an indicator-based methodology for minimizing flood vulnerability. Hydrol Process Int J 23(20):2983–2986

    Article  Google Scholar 

  • Balica SF (2007) Development and application of flood vulnerability indices for various spatial scales (Master theses, Unesco-IHE)

  • Balica SF, Wright NG, van der Meulen F (2012) A flood vulnerability index for coastal cities and its use in assessing climate change impacts. Nat Hazards 64(1):73–105

    Article  Google Scholar 

  • Cardona OD (2013) The need for rethinking the concepts of vulnerability and risk from a holistic perspective: a necessary review and criticism for effective risk management. In: Bankoff G, Frerks G, Hilhorst D (eds) Mapping vulnerability. Routledge, pp 56–70

  • Choudhury D, Phanikanth VS, Mhaske SY, Phule RR, Chatterjee K (2015) Seismic liquefaction hazard and site response for design of piles in Mumbai city. Indian Geotech J 45(1):62–78

    Article  Google Scholar 

  • Ciurean RL, Schröter D, Glade T (2013) Conceptual frameworks of vulnerability assessments for natural disasters reduction. In: Tiefenbacher J (ed) Approaches to disaster management-examining the implications of hazards, emergencies and disasters. InTech

  • CSA (2013) Population projection of Ethiopia for all regions at woreda level from 2014–2017

  • Dandapat K, Panda GK (2017) Flood vulnerability analysis and risk assessment using analytical hierarchy process. Model Earth Syst Environ 3(4):1627–1646

    Article  Google Scholar 

  • De Paola F, Giugni M, Topa ME, Bucchignani E (2014) Intensity–duration–frequency (IDF) rainfall curves, for data series and climate projection in African cities. SpringerPlus 3:133

    Article  Google Scholar 

  • De Paola F, Giugni M, Pugliese F, Annis A, Nardi F (2018) GEV parameter estimation and stationary vs. non-stationary analysis of extreme rainfall in African test cities. Hydrology 5(2):28

    Article  Google Scholar 

  • Douben KJ (2006) Characteristics of river floods and flooding: a global overview, 1985–2003. Irrig Drain 55:S9–S21. https://doi.org/10.1002/ird.239

    Article  Google Scholar 

  • EM-DAT (2015) The human cost of weather-related disasters, 1995–2015. Centre for Research on the Epidemiology of Disasters, UN Office for Disaster Risk Reduction (UNODRR), Brussels, pp 1–25

  • Erena SH, Worku H (2018) Flood risk analysis: causes and landscape based mitigation strategies in Dire Dawa city, Ethiopia. Geoenviron Disasters 5(1):16

    Article  Google Scholar 

  • Erena SH, Worku H (2019) Dynamics of land use land cover and resulting surface runoff management for environmental flood hazard mitigation: the case of Dire Daw city, Ethiopia. J Hydrol Reg Stud 22:100598

    Article  Google Scholar 

  • Erena SH, Worku H, De Paola F (2018) Flood hazard mapping using FLO-2D and local management strategies of Dire Dawa city, Ethiopia. J Hydrol Reg Stud 19:224–239

    Article  Google Scholar 

  • Fuchs S, Kuhlicke C, Meyer V (2011) Editorial for the special issue: vulnerability to natural hazards—the challenge of integration. Nat Hazards 58(2):609–619

    Article  Google Scholar 

  • Grecu F, Zaharia L, Ioana-Toroimac G, Armaș I (2017) Floods and flash-floods related to river channel dynamics. In: Radoane M, Vespremeanu-Stroe A (eds) Landform dynamics and evolution in Romania. Springer, Cham, pp 821–844

    Chapter  Google Scholar 

  • Handayani W, Rudiarto I, Setyono JS, Chigbu UE, Sukmawati AMA (2017) Vulnerability assessment: a comparison of three different city sizes in the coastal area of Central Java, Indonesia. Adv Clim Change Res 8(4):286–296

    Article  Google Scholar 

  • Huang D, Zhang R, Huo Z, Mao F, Youhao E, Zheng W (2012) An assessment of multidimensional flood vulnerability at the provincial scale in China based on the DEA method. Nat Hazards 64(2):1575–1586

    Article  Google Scholar 

  • Integrated Development Plan (IDP) (2006) Integrated development plan of Dire Dawa Administration, 2006/7–2010/2011. Berhanena Selam Printing Press, Addis Ababa

    Google Scholar 

  • IPCC (2001) Intergovernmental panel on climate change. Climate change 2001: impacts, adaptation and vulnerability. Cambridge University Press, Cambridge

    Google Scholar 

  • IPCC (2015) Livelihoods and poverty in assessment report 5. https://www.ipcc.ch/pdf/assessment-report/ar5/wg2/drafts/fd/WGIIAR5-Chap13_FGDall.pdf. Accessed 10 Aug 2018

  • Iyengar NS, Sudarshan P (1982) A method of classifying regions from multivariate data. Econ Political Wkly 17:2047–2052

    Google Scholar 

  • Jabareen YR (2006) Sustainable urban forms: their typologies, models, and concepts. J Plan Educ Res 26(1):38–52

    Article  Google Scholar 

  • Kasperson RE, Archer ER (2005) Vulnerable peoples and places. In: Norgaard R, Rapport D (eds) Ecosystems and human well-being: current state and trends: findings of the condition and trends working group, vol 1. Island Press, Washington, p 143

    Google Scholar 

  • Kha DD, Anh TN, Son NT (2011) Flood vulnerability assessment of downstream area in Thachhan river basin, Quang Tri province. Vietnam National University, Hanoi University of Science, Hanoi

    Google Scholar 

  • Khan SI, Hong Y, Wang J, Yilmaz KK, Gourley JJ, Adler RF, Brakenridge GR, Policelli F, Habib S, Irwin D (2011) Satellite remote sensing and hydrologic modeling for flood inundation mapping in Lake Victoria basin: implications for hydrologic prediction in ungauged basins. IEEE Trans Geosci Remote Sens 49(1):85–95

    Article  Google Scholar 

  • Kissi AE, Abbey GA, Agboka K, Egbendewe A (2015) Quantitative assessment of vulnerability to flood hazards in downstream area of Mono Basin, South-Eastern Togo: Yoto District. J Geogr Inf Syst 7(06):607

    Google Scholar 

  • Kuhlicke C, Scolobig A, Tapsell S, Steinführer A, De Marchi B (2011) Contextualizing social vulnerability: findings from case studies across Europe. Nat Hazards 58(2):789–810

    Article  Google Scholar 

  • Kumar P, Geneletti D, Nagendra H (2016) Spatial assessment of climate change vulnerability at city scale: a study in Bangalore, India. Land Use Policy 58:514–532

    Article  Google Scholar 

  • Mani P, Chatterjee C, Kumar R (2014) Flood hazard mapping and flood risk assessment using remote sensing, GIS and hydraulic modeling techniques. Nat Hazards 70:1553–1574

    Article  Google Scholar 

  • Mollaei Z, Madani H, Moghimzadeh H, Davary K, Faridani F (2016) Predicting avulsion potential on alluvial fans using FLO-2D model—a case study. In: 9th world congress of EWRA “water resources management in a changing world: challenges and opportunities,” EWRA, Istanbul, Turkey

  • Ndaruzaniye V, Lipper L, Fiott D, Flavell A, Clover J (2010) Climate change and security in Africa: vulnerability discussion paper. (Addis Ababa: Africa Climate Change Environment and Security [ACCES]), pp. 3–9. [Google Scholar]

  • Nkwunonwo U, Malcolm W, Brian B (2015) Flooding and flood risk reduction in Nigeria: cardinal gaps. J Geogr Nat Disasters 5:136

    Google Scholar 

  • Oulahen G (2016) The production of unequal vulnerability to flood hazards: a conceptual framework for hazards research in Canada’s cities. Can Geogr/Le Géographe canadien 60(1):82–90

    Article  Google Scholar 

  • Pandey VP, Manandhar S, Kazama F (2014) Climate change vulnerability assessment. In: Shrestha S, Babel MS, Pandey VP (eds) Climate change and water resources. CRC Press, London, pp 183–206

    Chapter  Google Scholar 

  • Pelling M (2012) The vulnerability of cities: natural disasters and social resilience. Remote Sens 49:85–91. https://doi.org/10.1109/TGRS.2010.2057513

    Google Scholar 

  • Salami RO, von Meding JK, Giggins H (2017) Urban settlements’ vulnerability to flood risks in African cities: a conceptual framework. Jàmbá J Disaster Risk Stud 9(1):1–9

    Google Scholar 

  • Seventh Framework Programme (2011) Review and evaluation of existing vulnerability indicators in order to obtain an appropriate set of indicators for assessing climate related vulnerability. Seventh Framework Programme, project CLUVA

  • Smit B, Wandel J (2006) Adaptation, adaptive capacity and vulnerability. Glob Environ Change 16(3):282–292

    Article  Google Scholar 

  • UNDP (2006) Human development report, United Nations Development Program. http://hdr.undp.org/hdr2006/statistics. Accessed 10 Aug 2018

  • UN-HABITAT (2008) Dire Dawa urban profile. UNON, Publishing Services Section, Nairobi

    Google Scholar 

  • UNISDR (2008) Disasters in numbers. United Nations Office for Disaster Risk Reduction, Geneva, p 2

    Google Scholar 

  • UNISDR W (2012) Disaster risk and resilience. Thematic Think Piece, UN System Task Force on the Post-2015 UN Development Agenda

  • Veenstra J (2013) Flood vulnerability assessment on a commune level in Vietnam. Unpublished Bachelor thesis, VNU University of Science in Hanoi, Vietnam

  • Villagrán de León JC (2006) Vulnerability: a conceptual and methodological review. UNU-EHS, Bonn

    Google Scholar 

  • Villordon MBBL, Gourbesville P (2014) Vulnerability index for urban flooding: understanding social vulnerabilities and risks. CUNY Academic Works. http://academicworks.cuny.edu/cc_conf_hic/366. Accessed 15 Aug 2018

  • Vojinović Z (2015) Flood risk: the holistic perspective: from integrated to interactive planning for flood resilience. IWA Publishing, London

    Book  Google Scholar 

  • Walker G, Burningham K (2011) Flood risk, vulnerability and environmental justice: evidence and evaluation of inequality in a UK context. Crit Soc Policy 31(2):216–240

    Article  Google Scholar 

  • Wannasai N, Walaiporn S, Pornparn S, Chutima K, Praphan P, Benjamas K, Chanaporn K (2013) Vulnerability to climate change: adaptation strategies and layers of resilience–quantifying vulnerability to climate change in Thailand. Monograph (Monograph). Series Name: Research Report No. 13

  • Wisner B (2004) Assessment of capability and vulnerability. In: Bankoff G, Frerks G, Hilhorst D (eds) Mapping vulnerability: disasters, development and people. Earthscan, London, pp 183–193

    Google Scholar 

  • Yoo G, Kim AR, Hadi S (2014) A methodology to assess environmental vulnerability in a coastal city: application to Jakarta, Indonesia. Ocean Coast Manag 102:169–177

    Article  Google Scholar 

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

    Article  Google Scholar 

Download references

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Correspondence to Sitotaw Haile Erena.

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Erena, S.H., Worku, H. Urban flood vulnerability assessments: the case of Dire Dawa city, Ethiopia. Nat Hazards 97, 495–516 (2019). https://doi.org/10.1007/s11069-019-03654-9

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