Vegetative and thermal performance of an extensive vegetated roof located in the urban heat island of a semiarid region

被引:20
|
作者
Robbiati, F. O. [1 ]
Caceres, N. [2 ]
Hick, E. C. [2 ]
Suarez, M. [2 ]
Soto, S. [3 ]
Barea, G. [4 ]
Matoff, E. [5 ]
Galetto, L. [1 ,6 ]
Imhof, L. [2 ]
机构
[1] Univ Nacl Cordoba, Fac Ciencias Exactas Fis & Nat, Dept Diversidad Biol & Ecol, Av Velez Sarsfield, RA-1611 Cordoba, Argentina
[2] Univ Catolica Cordoba UCC, Lab Recursos Genet & Sustentabilidad Bioclimat, Inst Invest Recursos Nat & Sustentabilidad Jose S, CONICET, Av Armada Argentina, RA-3555 Cordoba, Argentina
[3] Inst Floricultura IF INTA, Las Cabanas & Reseros S-N, Hurlingham, Buenos Aires, Argentina
[4] Consejo Nacl Invest Cient & Tecn, Inst Ambiente Habitat & Energia INAHE, Av Ruiz Leal S-N Parque Gen San Martin, Mendoza, Argentina
[5] Inst Nacl Tecnol Agr, Agencia Extens Rural, Av Presidente Roca Esq La Coruna, Cordoba, Argentina
[6] Univ Nacl Cordoba UNC, CONICET, Inst Multidisciplinario Biol Vegetal IMBIV, Av Velez Velez Sarsfield, RA-1611 Cordoba, Argentina
关键词
Native germplasm; Species combinations; Thermal performance; Cordoba city; Urban ecosystems; GREEN ROOFS; ENERGY PERFORMANCE; DESIGN; DIVERSITY; HOT; ESTABLISHMENT; CHALLENGES; POLLUTION; SURVIVAL; BENEFITS;
D O I
10.1016/j.buildenv.2022.108791
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Vegetated roofs reduce temperature and heat flow fluctuations on the building's surface mitigating the urban heat island effects and improving other ecosystem services. The objectives of this work were to quantify thermal reduction and to evaluate the performance of vegetated-microcosm treatments during 15 months with different species composition and growth form combinations. Our results showed considerable attenuation of temperature through the whole system of extensive green roofs (EVRs) in both summer and winter periods. The EVRs decreased the outside temperature from 44.6 ? to 34.7 ?. Temperatures for the EVR showed a lower peak-to-valley-gap and better anti-interference performance during the day and along the year. At the same time, thermal insulation provided by soil and vegetation layers resulted in a negative heat flux (-40 W/m(2)) reducing the incoming heat flux during the day. Almost all treatments showed >= 90% of plant survival and >= 60% of coverage after the experimental period. Microcosm treatments with the highest diversity showed the best performance in both the short and long terms (particularly those with the native Eustachys distichophylla and the exotic Sedum spp.). Consequently, diverse plant arrangements are recommended when designing EVRs in semi-arid climates because they show a better performance in mitigating urban heat island effects by reducing temperature and heat flow fluctuations and also because they provide ecosystem services in urban environments.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Growth performance of multi-species plant mixtures on an extensive vegetated roof: A two-year experimental study
    Caceres, Natalia
    Robbiati, Federico Omar
    Suarez, Mario
    Hick, Emmanuel Christian
    Matoff, Evangelina
    Jim, Chi Yung
    Galetto, Leonardo
    Imhof, Lelia
    URBAN ECOSYSTEMS, 2024, 27 (04) : 1207 - 1223
  • [22] Impact of Drainage Layer on the Thermal and Moisture Performance of Extensive Green Roof Systems
    Hagos, Sara
    Tariku, Fitsum
    Thermal Performance of the Exterior Envelopes of Whole Buildings, 2022, : 104 - 111
  • [23] The Influence of Extensive Green Roofs on Roof Thermal Performance in Batu Pahat Climate
    Yacob, Mohd Norfekry Md
    Kasmin, Hartini
    Kori, Mohd Khairul Adam Mohd
    Mohamed, Wan Afnizan Wan
    Rahmat, Siti Nazahiyah
    Adnan, Mohd Shalahuddin
    PROCEEDINGS OF AICCE'19: TRANSFORMING THE NATION FOR A SUSTAINABLE TOMORROW, 2020, 53 : 1473 - 1483
  • [24] Experimental study of the thermal performance of an extensive green roof on sunny summer days
    Tang, Mingfang
    Zheng, Xing
    APPLIED ENERGY, 2019, 242 : 1010 - 1021
  • [25] Modeling of urban heat island and its impacts on thermal circulations in the Beijing–Tianjin–Hebei region, China
    Mengmeng Li
    Tijian Wang
    Min Xie
    Bingliang Zhuang
    Shu Li
    Yong Han
    Nianliang Cheng
    Theoretical and Applied Climatology, 2017, 128 : 999 - 1013
  • [26] Assessment of urban heat island warming in the greater accra region
    Wemegah, Cosmos S.
    Yamba, Edmund, I
    Aryee, Jeffrey N. A.
    Sam, Fredrick
    Amekudzi, Leonard K.
    SCIENTIFIC AFRICAN, 2020, 8
  • [27] Urban Expansion and Heat Island Dynamics in the Quanzhou Region, China
    Xu, Hanqiu
    Ding, Feng
    Wen, Xiaole
    IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2009, 2 (02) : 74 - 79
  • [28] PCM cool roof systems for mitigating urban heat island - an experimental and numerical analysis
    Yang, Young Kwon
    Kim, Min Young
    Chung, Min Hee
    Park, Jin Chul
    ENERGY AND BUILDINGS, 2019, 205
  • [29] Evaluation of cool roof and vegetations in mitigating urban heat island in a tropical city, Singapore
    Li, Xian-Xiang
    Norford, Leslie K.
    URBAN CLIMATE, 2016, 16 : 59 - 74
  • [30] Spatial and temporal variabilities in land surface temperatures and near-surface air temperatures in an arid to semiarid urban region: implications for urban heat island research
    Jaber, Salahuddin M.
    Sengupta, Raja
    GEO-SPATIAL INFORMATION SCIENCE, 2024, 27 (06) : 2137 - 2161