Climate Change Adaptation: Prioritising Districts for Urban Green Coverage to Mitigate High Temperatures and UHIE in Developing Countries

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dc.contributor.author Aboulnaga, Mohsen
dc.contributor.author Mostafa, Mona
dc.date.accessioned 2020-02-16T08:07:29Z
dc.date.available 2020-02-16T08:07:29Z
dc.date.issued 2018
dc.identifier.citation 1. Oke TR (1989) The micrometeorology of the urban forest. Royal Soc 324(1223):335–349. https://doi.org/10.1098/rstb.1989.0051. Accessed 27 Jun 2018 CrossRefGoogle Scholar 2. Taha H (1997) Urban climates and heat islands: albedo, evapotranspiration, and anthropogenic heat. Energ Buildings 25(2):99–103 CrossRefGoogle Scholar 3. Oke TR (1982) The energetic basis of the urban heat island. Q J R Meteorol Soc 108(455):1–24 Google Scholar 4. Oke TR (1987) Boundary layer climates, 2nd edn. Methuen Co, London, New York, p 435. http://www.scirp.org/(S(351jmbntvnsjt1aadkposzje))/reference/ReferencesPapers.aspx?ReferenceID=1113473 Google Scholar 5. Kolokotroni M, Giannitsaris I, Watkins R (2006) The effect of the London urban heat island on building summer cooling demand and night ventilation strategies. Sol Energy 80(4):383–392 CrossRefGoogle Scholar 6. Lokoshchenko MA (2014) Urban climate urban “heat island” in Moscow. Urban Climate 10:550–562. https://doi.org/10.1016/j.uclim.2014.01.008. Accessed 30 Jun 2018 CrossRefGoogle Scholar 7. Abutaleb K, Ngie A, Darwish A, Ahmed M, Arafat S, Ahmed F (2015) Assessment of urban heat island using remotely sensed imagery over greater Cairo, Egypt. Adv Remote Sensing 4(March):35–47 CrossRefGoogle Scholar 8. Effat HA, Hassan OAK (2014) Change detection of urban heat islands and some related parameters using multi-temporal Landsat images; a case study for Cairo city, Egypt. Urban Climate 10(P1):171–188. https://doi.org/10.1016/j.uclim.2014.10.011 CrossRefGoogle Scholar 9. El-magd IA, Ismail A, Zanaty N (2016) Spatial variability of urban heat islands in Cairo City, Egypt using time series of landsat satellite images. Int J Adv Remote Sensing GIS 5(3):1618–1638 CrossRefGoogle Scholar 10. Raymond A (2000) Cairo. Harvard University Press, Cambridge [MA] Google Scholar 11. El-Zafarany AM (2004) Existing green areas in Cairo: comparison with planning criteria and international norms, Cairo, Egypt. http://www.egyptarch.net/research/cairourbandesert.pdf. Accessed 27 Jun 2018 12. Kafafy N, Al-betawi Y (n. d.) Urban green space benefits and the pivotal role of conservation, Cairo’s case—Egypt, 1–13. https://core.ac.uk/download/pdf/19396743.pdf. Accessed 28 Jun 2018 13. Norton BA, Coutts AM, Livesley SJ, Harris RJ, Hunter AM, Williams NSG (2015) Planning for cooler cities: a framework to prioritise green infrastructure to mitigate high temperatures in urban landscapes. Landsc Urban Plan 134:127–138. https://doi.org/10.1016/j.landurbplan.2014.10.018. Accessed 30 Jun 2018 CrossRefGoogle Scholar 14. Matzarakis A, Rutz F, Mayer H (2007) Modelling radiation fluxes in simple and complex environments - application of the RayMan model. Int J Biometeorol 51(4):323 CrossRefGoogle Scholar 15. Morabito M, Crisci A, Gioli B, Gualtieri G, Toscano P, Di Stefano V et al. (2015) Urban-Hazard risk analysis: mapping of heat-related risks in the elderly in major Italian cities. PLoS ONE 10(5):e0127277. https://doi.org/10.1371/journal.pone.0127277. Accessed 30 Jun 2018 CrossRefGoogle Scholar 16. Inostroza L, Palme M, De La Barrera F (2016) A heat vulnerability index: spatial patterns of exposure, sensitivity and adaptive capacity for Santiago de Chile. PLoS One 11(9). https://doi.org/10.1371/journal.pone.0162464. Accessed 30 Jun 2018 CrossRefGoogle Scholar 17. Tomlinson CJ, Chapman L, Thornes JE, Baker CJ (2011) Including the urban heat island in spatial heat health risk assessment strategies: a case study for Birmingham, UK. Int J Health Geogr 10(1):42. https://doi.org/10.1186/1476-072X-10-42 CrossRefGoogle Scholar 18. UNDP Egypt and MOPLD (2006) Taqareer al-Tanmia Al-basharia li-l-muhafazat Al-Masria: Taqreer Al-Qahira, UNDP, Cairo, [Human Development Reports for Egyptian governorates: Cairo’s report] Google Scholar 19. General Office of Physical Planning—GOPP (2009) Cairo future vision 2050: within a national vision of Egypt [Powerpoint presentation], Cairo, Egypt. https://cairofrombelow.files.wordpress.com/2011/08/cairo-2050-vision-v-2009-gopp-12-mb.pdf 20. El-Zafarany AM (2004) Green areas in greater Cairo: the problem and solution opportunities. Cairo, Egypt. http://www.egyptarch.net/research/cairogreanstrategies.pdf 21. World Health Organisation (WHO) 2017. http://www.who.int/airpollution/en/. Accessed 02 Jul 2018 en_US
dc.identifier.isbn Print ISBN 978-3-030-18487-2
dc.identifier.isbn Online ISBN 978-3-030-18488-9
dc.identifier.other https://doi.org/10.1007/978-3-030-18488-9_68
dc.identifier.uri https://t.ly/W3vDk
dc.description MSA Google Scholar en_US
dc.description.abstract Urbanisation and the increasing population contribute to the occurrence of the well-documented phenomena of urban heat island effect (UHIE). Heat-related problems have become a global issue as prolonged exposure to extreme high temperatures increased the percentage of mortality and morbidity in cities worldwide. The purpose of this study is to prioritise urban areas that are at high risk for heat-related incidents, particularly in Cairo Governorate, Egypt. It also intended to investigate the implementation of urban green coverage (UGC) strategies such as green open spaces, trees, green roofs, and vertical walls. UGC would contribute to mitigating UHIE in developing countries. The methodology includes a review on the UHI problems, along with the cooling benefits the UGC can produce. In addition, the study adopts the Australian model developed by A. Norton et al., in 2015, which states that a high-priority area can be identified by the intersection of three factors: (1) high daytime/night-time surface temperatures (heat exposure), (2) most vulnerable sections of the society to extreme heat (vulnerability), and (3) zones with many users active outdoor (behavioural exposure). However, in Cairo City, it was difficult to assess the behaviour of population in outdoor public spaces. Therefore, the study follows “Crichton’s Risk Triangle” conducted by Morabito et al., 2015, to identify high-risk areas based on the intersection of three layers. The triangle’s three components are (a) high daytime/night-time surface temperatures (hazard), (b) total exposed population in a city (exposure), and (c) subpopulations at risk of being harmed during extreme heat (vulnerability). In the simulation, the risk assessment method simplifies the process of constructing the GIS database as it is composed of layering system. Hence, this study takes into account several vulnerability factors such as the distribution of the elderly and very young population and the deprivation index of Cairo districts. In the development of a heat-related vulnerability index (HVI) map for Cairo districts, it was done by overlayering the natural hazard layer (land surface temperature in summer) with spatial demographic data using GIS Software. Results of risk maps of Cairo were presented and showed normalised HVI values ranging between 0.0 and 1.0, which can be categorised into five risk levels (very low, low, moderate, high, and very high). Results also indicated that 13 out of the 46 districts in Cairo are at very high/ high risk, while only five districts have a very low-risk probability. Finally, the study develops a tool to map the population vulnerability to extreme heat events in Cairo city resulting from UHIE, which identifies high-priority risk areas that requires urgent intervention by applying more UGC as a significant action to mitigate UHIE in cities and adapt to climate change risks. en_US
dc.language.iso en en_US
dc.publisher Springer en_US
dc.relation.ispartofseries Renewable Energy and Sustainable Buildings;pp 825-837
dc.subject Climate change en_US
dc.subject Mitigation and adaptation en_US
dc.subject Urban heat island en_US
dc.subject Urban green coverage en_US
dc.title Climate Change Adaptation: Prioritising Districts for Urban Green Coverage to Mitigate High Temperatures and UHIE in Developing Countries en_US
dc.type Book chapter en_US
dc.identifier.doi https://doi.org/10.1007/978-3-030-18488-9_68
dc.Affiliation October University for modern sciences and Arts (MSA)


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