International journal of

ADVANCED AND APPLIED SCIENCES

EISSN: 2313-3724, Print ISSN:2313-626X

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 Volume 5, Issue 10 (October 2018), Pages: 87-92

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 Original Research Paper

 Title: Positive effects of vegetation: Biodiversity and extensive green roofs for Mediterranean climate

 Author(s): Sinem Yıldırım, Özge Özden *

 Affiliation(s):

 Department of Landscape Architecture, Near East University, Nicosia, Cyprus

 https://doi.org/10.21833/ijaas.2018.10.012

 Full Text - PDF          XML

 Abstract:

Green roofs are important green spaces in order to improve vegetated area in urban landscapes. They can support ecosystem functionality, including stormwater management, cooling and insulation of buildings, moderation of urban heat island effect, contribution to human health and habitat provisioning. In addition they provide habitats in areas deprived of natural wildlife areas, providing green corridors linking fragmented existing habitats, improve wildlife movement and dispersal, thereby increasing population connectivity and act as refuges for declining or rare species. Unfortunately populations living in urban areas continue to rise and are expected to reach 61% in 2030, which is likely to negatively impact urban green spaces. The aim of this research was to investigate the importance of green roof systems on urban biodiversity. A literature review was undertaken to discover the importance of green roof systems on urban biodiversity. Additionally, feasibility analysis of the planting project of possible extensive green roof application in semi-arid climatic conditions of Cyprus was carried out. Positive effects of the plants on the roof are also discussed. Feasibility analysis was carried out for the NEU car factory management building which was planned as 820 m2. The following plant species have been suggested for the vegetation of sustainable green roof system in Cyprus; Sedum angelina, Sedum spurium, Sedum glaucophyllum, Thymus vulgaris, Santolina spp., Gaura lindheimeri, Lavandula angustifolia, Rosmarinus officinalis. According to research results 820 m2 of extensive green roof will cost approximately 37107 Euro. Under Cyprus climatic conditions, this cost analysis estimated that extensive green roof application would cost around 49 Euro per square meter. This research provides valuable information for the importance of green roof establishments within the Mediterranean cityscapes and also has suggestions of vegetation types and roof layers for future green roof projects for the Mediterranean region. 

 © 2018 The Authors. Published by IASE.

 This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

 Keywords: Green roof, Vegetation, Biodiversity, Urban ecology, Mediterranean

 Article History: Received 9 May 2018, Received in revised form 10 August 2018, Accepted 22 August 2018

 Digital Object Identifier: 

 https://doi.org/10.21833/ijaas.2018.10.012

 Citation:

  Yıldırım S and Özden Ö (2018). Positive effects of vegetation: Biodiversity and extensive green roofs for Mediterranean climate. International Journal of Advanced and Applied Sciences, 5(10): 87-92

 Permanent Link:

 http://www.science-gate.com/IJAAS/2018/V5I10/Sinem.html

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 References (30) 

  1. Barron P (1999). Create a Mediterranean Garden: Planting a low-maintenance, drought-proof paradise anywhere. Anness Publishing Ltd., London, UK.   [Google Scholar]
  1. Baumann N (2006). Ground-nesting birds on green roofs in Switzerland: Preliminary observations. Urban Habitats, 4(1): 37-50.   [Google Scholar]
  1. Blaustein L, Kadas GJ, and Gurevitch J (2016). Integrating ecology into green roof research. Israel Journal of Ecology and Evolution, 62(1-2): 1-6. https://doi.org/10.1080/15659801.2016.1208943   [Google Scholar]
  1. Boivin MA, Lamy MP, Gosselin A, and Dansereau B (2001). Effect of artificial substrate depth on freezing injury of six herbaceous perennials grown in a green roof system. Hort Technology, 11(3): 409-412.   [Google Scholar]
  1. Brenneisen S (2006). Space for urban wildlife: Designing green roofs as habitats in Switzerland. Urban Habitats, 4(1): 27-36.   [Google Scholar]
  1. Butler C, Butler E, and Orians CM (2012). Native plant enthusiasm reaches new heights: perceptions, evidence, and the future of green roofs. Urban Forestry and Urban Greening, 11(1): 1-10. https://doi.org/10.1016/j.ufug.2011.11.002   [Google Scholar]
  1. Coffman RR (2007). Comparing wildlife habitat and biodiversity across green roof type. In the 5th Annual Greening Rooftops for Sustainable Communities Conference, Awards and Trade Show, Minneapolis, USA.   [Google Scholar]
  1. Colla SR, Willis E, and Packer L (2009). Can green roofs provide habitat for urban bees (Hymenoptera: Apidae)?. Cities and the Environment (CATE), 2(1): 1-12. https://doi.org/10.15365/cate.2142009   [Google Scholar]
  1. Dunnett N and Kingsbury N (2008). Planting green roofs and living walls. Timber Press, Portland, USA.   [Google Scholar]
  1. Faeth SH, Bang C, and Saari S (2011). Urban biodiversity: Patterns and mechanisms. Annals of the New York Academy of Sciences, 1223(1): 69-81. https://doi.org/10.1111/j.1749-6632.2010.05925.x   [Google Scholar]  PMid:21449966
  1. Fioretti R, Palla A, Lanza LG, and Principi P (2010). Green roof energy and water related performance in the Mediterranean climate. Building and Environment, 45(8): 1890-1904. https://doi.org/10.1016/j.buildenv.2010.03.001   [Google Scholar]
  1. Goddard MA, Dougill AJ, and Benton TG (2010). Scaling up from gardens: Biodiversity conservation in urban environments. Trends in Ecology and Evolution, 25(2): 90-98. https://doi.org/10.1016/j.tree.2009.07.016   [Google Scholar]  PMid:19758724
  1. Günal N (2013). Türkiye'de iklimin doğal bitki örtüsü üzerindeki etkileri [The effects of the climate on the natural vegetation in Turkey]. Acta Turcıca Online Thematic Journal of Turkic Studies, 5(1): 1-22.   [Google Scholar]
  1. Kadas G (2006). Rare invertebrates colonizing green roofs in London. Urban Habitats, 4(1): 66-86.   [Google Scholar]
  1. Latymer H (1990). The Mediterranean Gardener. Frances Lincoln, London, UK.   [Google Scholar] PMid:2175586
  1. Löfvenhaft K, Björn C, and Ihse M (2002). Biotope patterns in urban areas: A conceptual model integrating biodiversity issues in spatial planning. Landscape and Urban Planning, 58(2-4): 223-240. https://doi.org/10.1016/S0169-2046(01)00223-7   [Google Scholar]
  1. Lundholm J, MacIvor JS, MacDougall Z, and Ranalli M (2010). Plant species and functional group combinations affect green roof ecosystem functions. PloS One, 5(3): e9677. https://doi.org/10.1371/journal.pone.0009677   [Google Scholar]  PMid:20300196 PMCid:PMC2837352
  1. Lundholm JT (2015). Green roof plant species diversity improves ecosystem multifunctionality. Journal of Applied Ecology, 52(3): 726-734. https://doi.org/10.1111/1365-2664.12425   [Google Scholar]
  1. MacIvor JS and Lundholm J (2011). Insect species composition and diversity on intensive green roofs and adjacent level-ground habitats. Urban Ecosystems, 14(2): 225-241. https://doi.org/10.1007/s11252-010-0149-0   [Google Scholar]
  1. Madre F, Vergnes A, Machon N, and Clergeau P (2013). A comparison of 3 types of green roof as habitats for arthropods. Ecological Engineering, 57: 109-117. https://doi.org/10.1016/j.ecoleng.2013.04.029   [Google Scholar]
  1. McHoy P and Donaldson S (2010). Small gardens. Anness Publishing Limited, London, UK. 
  1. Mentens J, Raes D, and Hermy M (2006). Green roofs as a tool for solving the rainwater runoff problem in the urbanized 21st century?. Landscape and Urban Planning, 77(3): 217-226. https://doi.org/10.1016/j.landurbplan.2005.02.010   [Google Scholar]
  1. Myers N (1990). The biodiversity challenge: Expanded hot-spots analysis. Environmentalist, 10(4): 243-256. https://doi.org/10.1007/BF02239720   [Google Scholar]  PMid:12322583
  1. Oberndorfer E, Lundholm J, Bass B, Coffman RR, Doshi H, Dunnett N, and Rowe B (2007). Green roofs as urban ecosystems: Ecological structures, functions, and services. BioScience, 57(10): 823-833. https://doi.org/10.1641/B571005   [Google Scholar]
  1. Rosenzweig ML (2016). Green roofs: New ecosystems to defend species diversity. Israel Journal of Ecology and Evolution, 62(1-2): 7-14. https://doi.org/10.1080/15659801.2015.1121600   [Google Scholar]
  1. Savard JPL, Clergeau P, and Mennechez G (2000). Biodiversity concepts and urban ecosystems. Landscape and Urban Planning, 48(3-4): 131-142. https://doi.org/10.1016/S0169-2046(00)00037-2   [Google Scholar]
  1. Starfinger U and Sukopp H (1994). Assessment of urban biotopes for nature conservation. In: Cook EA and Van Lier HN (Eds.), Landscape planning and ecological networks: 89-115. Elsevier, Amsterdam, Netherlands.   [Google Scholar]
  1. Susca T, Gaffin SR, and Dell'Osso GR (2011). Positive effects of vegetation: Urban heat island and green roofs. Environmental Pollution, 159(8-9): 2119-2126. https://doi.org/10.1016/j.envpol.2011.03.007   [Google Scholar]  PMid:21481997
  1. Tonietto R, Fant J, Ascher J, Ellis K, and Larkin D (2011). A comparison of bee communities of Chicago green roofs, parks and prairies. Landscape and Urban Planning, 103(1): 102-108. https://doi.org/10.1016/j.landurbplan.2011.07.004   [Google Scholar]
  1. Viney DE (1994). An illustrated flora of North Cyprus. Koeltz, Paris, France.   [Google Scholar] PMCid:PMC45353