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Spatiotemporal characteristics of urban land surface temperature and UHI formation: a case study of Tehran, Iran

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Abstract

Urban heat island (UHI) is one of the adverse effects of densely populated cities. Therefore, studying the causes of temperature variations and UHI formation in urban area has become more important as a significant stage in improving urban health and development. Toward this end, impacts of urban Land Use/Land Cover (LULC) characteristics and spatiotemporal pattern of Land Surface Temperature (LST) under different weather conditions were investigated for determining the area with high potential of UHI formation in Tehran. Furthermore, LST of six different land covers was recorded with 15-min time intervals using 2channel-thermocouples with six PT100 sensors. In addition, SHRP model that can effectively predict LST using air temperature were developed for different weather conditions. Then, the accuracy of the model was determined by actual measured LST. Results indicate that temperature of land surface corresponds exactly to the distinct LULC types. The temperature of water bodies and vegetated area ranges between 12–14 °C and 8–10 °C lower than the surface temperature of roads and built-up areas in summer and winter times, respectively. Hence, bare lands, built-up areas and roads with average surface temperature of 48.5, 47.2, and 46.1 °C are the hottest places of the city with high potential of UHI formation. Also, results illustrate that SHRP model has high degree of accuracy for estimating the LST using air temperature when direct observations and measurement of LST are unavailable (r = 0.95).

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Notes

  1. Strategic Highway Research Program.

References

  • Adeyeri O et al (2017) Investigating surface urban heat island characteristics over Abuja, Nigeria: relationship between land surface temperature and multiple vegetation indices. Remote Sens Appl: Soc Environ 7:57–68

    Google Scholar 

  • Alavipanah SK et al (2005) Diurnal behavior of land surface temperature in LUT desert. Desert 10(1):19–28

    Google Scholar 

  • Alavipanah S et al (2008) A study of the relationship among temperatures of surface features and its application in remote sensing study of Lut desert. Desert 12(1):85–97

    Google Scholar 

  • Arifwidodo SD, Tanaka T (2015) The characteristics of urban heat island in Bangkok, Thailand. Procedia Soc Behav Sci 195:423–428

    Article  Google Scholar 

  • Bokaie M, Zarkesh MK, Arasteh PD, Hosseini A (2016) Assessment of urban Heat Island based on the relationship between land surface temperature and LULCin Tehran. Sustain Cities Soc 23:94–104

    Article  Google Scholar 

  • Chen X, Zhang Y (2017) Impacts of urban surface characteristics on spatiotemporal pattern of land surface temperature in Kunming of China. Sustainable Cities and Society 32:87–99

    Article  Google Scholar 

  • Chow WT, Roth M (2006) Temporal dynamics of the urban heat island of Singapore. Int J Climatol 26(15):2243–2260

    Article  Google Scholar 

  • Erell E, Williamson T (2007) Intra-urban differences in canopy layer air temperature at a mid-latitude city. Int J Climatol 27(9):1243–1255

    Article  Google Scholar 

  • Fathizad H, Tazeh M, Kalantari S, Shojaei S (2017) The investigation of spatiotemporal variations of land surface temperature based on land use changes using NDVI in southwest of Iran. J Afr Earth Sci 134:249–256

    Article  Google Scholar 

  • Gallo K, Hale R, Tarpley D, Yu Y (2011) Evaluation of the relationship between air and land surface temperature under clear-and cloudy-sky conditions. J Appl Meteorol Climatol 50(3):767–775

    Article  Google Scholar 

  • Ghanghermeh A, Roshan G, Orosa JA, Calvo-Rolle JL, Costa ÁM (2013) New climatic indicators for improving urban sprawl: a case study of Tehran city. Entropy 15(3):999–1013

    Article  Google Scholar 

  • Hart MA, Sailor DJ (2009) Quantifying the influence of land-use and surface characteristics on spatial variability in the urban heat island. Theor Appl Climatol 95(3–4):397–406

    Article  Google Scholar 

  • Hassan H et al (2005) Development of asphalt pavement temperature models for Oman. J Eng Res [TJER] 2(1):32–42

    Article  Google Scholar 

  • He BJ (2018) Potentials of meteorological characteristics and synoptic conditions to mitigate urban heat island effects. Urban Clim 24:26–33

    Article  Google Scholar 

  • Huang L, Li J, Zhao D, Zhu J (2008) A fieldwork study on the diurnal changes of urban microclimate in four types of ground cover and urban heat island of Nanjing, China. Build Environ 43(1):7–17

    Article  Google Scholar 

  • Keramitsoglou I, Kiranoudis CT, Ceriola G, Weng Q, Rajasekar U (2011) Identification and analysis of urban surface temperature patterns in greater Athens, Greece, using MODIS imagery. Remote Sens Environ 115(12):3080–3090

    Article  Google Scholar 

  • Kong F, Yin H, James P, Hutyra LR, He HS (2014) Effects of spatial pattern of greenspace on urban cooling in a large metropolitan area of eastern China. Landsc Urban Plan 128:35–47

    Article  Google Scholar 

  • Landsberg, H. E. (1981). The urban climate, Academic press

  • Levermore, G., et al. (2017). "The increasing trend of the urban heat island intensity." Urban Climate

  • Li J, Song C, Cao L, Zhu F, Meng X, Wu J (2011) Impacts of landscape structure on surface urban heat islands: a case study of Shanghai, China. Remote Sens Environ 115(12):3249–3263

    Article  Google Scholar 

  • Li X, Zhou W, Ouyang Z (2013) Relationship between land surface temperature and spatial pattern of greenspace: what are the effects of spatial resolution? Landsc Urban Plan 114:1–8

    Article  Google Scholar 

  • Mathew A, Khandelwal S, Kaul N (2018) Analysis of diurnal surface temperature variations for the assessment of surface urban heat island effect over Indian cities. Energy Build 159:271–295

    Article  Google Scholar 

  • Moghbel M, Salim RE (2017) Environmental benefits of green roofs on microclimate of Tehran with specific focus on air temperature, humidity and CO 2 content. Urban Clim 20:46–58

    Article  Google Scholar 

  • Mohseni, A. (1998). LTPP seasonal asphalt concrete (AC) pavement temperature models

  • Oke TR (1982) The energetic basis of the urban heat island. Q J R Meteorol Soc 108(455):1–24

    Google Scholar 

  • Quanliang, C., et al. (2009). Urban heat island effect research in Chengdu city based on MODIS data. Bioinformatics and biomedical engineering, 2009. ICBBE 2009. 3rd international conference on, IEEE

  • Roshan G, Almomenin HS, da Silveira Hirashima SQ, Attia S (2019) Estimate of outdoor thermal comfort zones for different climatic regions of Iran. Urban Climate 27:8–23

    Article  Google Scholar 

  • Sadeghinia A et al (2012) Spatial-temporal analysis of Tehran’s UHI using remote sensing and GIS. Geogr Nat Hazards 4:1–7

    Google Scholar 

  • Saeifar M, Mohammadnia M (2015) Land use/land cover change detection in Tehran city using Landsat satellite images. J Appl Environ Biol Sci 5(12):199–207

    Google Scholar 

  • Saradjian M, Sherafati S (2015) Trend assessment of spatio-temporal change of Tehran Heat Island using satellite images. Intern Arch Photogr Remote Sensi Spatial Inform Sci 40(1):657

    Article  Google Scholar 

  • Shamsipour A et al (2011) Analysis of diurnal behavior of Tehran’s UHI. J Environ Stud 4:45–56

    Google Scholar 

  • Shamsipour A et al (2012) Analysis of spatial varations of Tehran's UHI Core. Nat Gegr Res 3:127–146

    Google Scholar 

  • Shojaei P, Gheysari M, Myers B, Eslamian S, Shafieiyoun E, Esmaeili H (2017) Effect of different land cover/use types on canopy layer air temperature in an urban area with a dry climate. Build Environ 125:451–463

    Article  Google Scholar 

  • Stone B, Norman JM (2006) Land use planning and surface heat island formation: a parcel-based radiation flux approach. Atmos Environ 40(19):3561–3573

    Article  Google Scholar 

  • Tayyebi, A., et al. (2017). "Analyzing long-term spatio-temporal patterns of land surface temperature in response to rapid urbanization in the mega-city of Tehran." Land Use Policy

  • United Nations (2016). "The world’s cities in 2016." Data Booklet

  • Wang J-k et al (2007) Urban heat (or cool) island over Beijing from MODIS land surface temperature. J Remote Sens-Beijing 11(3):330

    Google Scholar 

  • Weng Q, Lu D, Schubring J (2004) Estimation of land surface temperature–vegetation abundance relationship for urban heat island studies. Remote Sens Environ 89(4):467–483

    Article  Google Scholar 

  • Yang J, Sun J, Ge Q, Li X (2017) Assessing the impacts of urbanization-associated green space on urban land surface temperature: a case study of Dalian, China. Urban For Urban Green 22:1–10

    Article  Google Scholar 

  • Zhang X, Zhong T, Feng X, Wang K (2009) Estimation of the relationship between vegetation patches and urban land surface temperature with remote sensing. Int J Remote Sens 30(8):2105–2118

    Article  Google Scholar 

  • Zhao Z-Q, He BJ, Li LG, Wang HB, Darko A (2017) Profile and concentric zonal analysis of relationships between land use/land cover and land surface temperature: case study of Shenyang, China. Energy Build 155:282–295

    Article  Google Scholar 

Download references

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Moghbel, M., Shamsipour, A.A. Spatiotemporal characteristics of urban land surface temperature and UHI formation: a case study of Tehran, Iran. Theor Appl Climatol 137, 2463–2476 (2019). https://doi.org/10.1007/s00704-018-2735-7

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  • DOI: https://doi.org/10.1007/s00704-018-2735-7