Analysis of urban heat islands in the study of urban environmental problems based on remote sensing

    Shahnaz Amanova Info
    Afag Hajiyeva Info
    Leyla Ibrahimova Info
    Firuza Jafarova Info
DOI: https://doi.org/10.3846/gac.2026.24317

Abstract

As global urbanization accelerates cities increasingly face ecological challenges, most notably the Urban Heat Island (UHI) effect. This study investigates the formation and spatial distribution of UHI’s in the cities of Mingachevir, Shirvan and Yevlakh, located in the central region of the Republic of Azerbaijan. Utilizing ArcGIS, the analysis processed Landsat 8 OLI/TIRS satellite imagery from August 2023. The analysis revealed that, despite their relatively small size, distinct urban heat islands have formed in the studied cities. The results demonstrate the effectiveness of satellite-based methods for identifying urban heat islands and can be used to support urban planning, environmental monitoring, and climate adaptation strategies in the region. The results indicate a strong correlation between urban urban density and thermal concentration, with LST values in urban cores reaching up to 42 °C, which is 2 °C higher than the surrounding rural landscapes. Analysis reveals that industrial zones and areas with low albedo surfaces (asphalt and concreate) are primary drivers of thermal intensity in these cities. To mitigate these effects, the study recommends the implementation of “cool roofs”, the expansion of urban green corridors, and the integration of permeable pavements into local zoning laws. These findings provide a quantiative framework for urban planners and environmental policymakers in Azerbaijan to develop targeted climate adaptation strategies and improve urban thermal comfort. 

 

Keywords:

urban heat island, climate action, remote sensing, ArcGIS, Landsat, sustainable cities
Published in Issue
October 7, 2026
Abstract Views
35

How to Cite

Amanova, S., Hajiyeva, A., Ibrahimova, L., & Jafarova, F. (2026). Analysis of urban heat islands in the study of urban environmental problems based on remote sensing. Geodesy and Cartography, 52(S1), S4–S9. https://doi.org/10.3846/gac.2026.24317

Share

References

Amani, M. J., Tanzadeh, R., Moghadas Nejad, F., Kabiri Nasrabad, M. M., Chalabii, J., & Movahedi Rad, M. (2025). Urban sustainability through pavement technologies: Reducing urban heat islands with cool pavements. Buildings, 15(3), Article 504. https://doi.org/10.3390/buildings15030504

Amanova, S. S., Hajiyeva, G. N., Najafov, J. S., & Ibrahimova, L. P. (2024). Investigation of urban biodiversity and factors influencing it based on modern technologies. Geodesy and Cartography, 50(3), 141–149. https://doi.org/10.3846/gac.2024.19626

Bochenek, A. D., & Klemm, K. (2020). The impact of passive green technologies on the microclimate of historic urban structures: The case study of Lodz. Atmosphere, 11(9), Article 974. https://doi.org/10.3390/atmos11090974

Cordeiro, A., Ornelas, A., & Lameiras, J. M. (2023). The thermal regulator role of urban green spaces: The case of Coimbra (Portugal). Forests, 14(12), Article 2351. https://doi.org/10.3390/f14122351

Croce, S., D’Agnolo, E., Caini, M., & Paparella, R. (2021). The use of cool pavements for the regeneration of industrial districts. Sustainability, 13(11), Article 6322. https://doi.org/10.3390/su13116322

Cuce, P. M., Cuce, E., & Santamouris, M. (2025). Towards sustainable and climate-resilient cities: Mitigating urban heat islands through green infrastructure. Sustainability, 17(3), Article 1303. https://doi.org/10.3390/su17031303

Detommaso, M., Gagliano, A., Marletta, L., & Nocera, F. (2021). Sustainable urban greening and cooling strategies for thermal comfort at pedestrian level. Sustainability, 13(6), Article 3138. https://doi.org/10.3390/su13063138

Dorward, N., Fox, S., Statham, T., & Wolf, L. J. (2023). A spatial-demographic analysis of Africa’s emerging urban geography. Environment and Urbanization, 35(2), 310–327. https://doi.org/10.1177/09562478231190735

Habibi, A., & Kahe, N. (2024). Evaluating the role of green infrastructure in microclimate and building energy efficiency. Buildings, 14(3), Article 825. https://doi.org/10.3390/buildings14030825

Irfeey, A. M. M., Chau, H.-W., Sumaiya, M. M. F., Wai, C. Y., Muttil, N., & Jamei, E. (2023). Sustainable mitigation strategies for urban heat island effects in urban areas. Sustainability, 15(14), Article 10767. https://doi.org/10.3390/su151410767

Ismayilova, A. A., Mirzezadeh, R. I., Bunyatova, L. N., Mammadova, G. I., Hasanova, T. A., Asgarova, G. F., Madnee, M. (2025). Biomass and enzymatic activity assessment of the coniferous-deciduous forests in Azerbaijan. SABRAO Journal of Breeding and Genetics, 57(6), 2584–2595. http://doi.org/10.54910/sabrao2025.57.6.31

Giorio, M., & Paparella, R. (2023). Climate mitigation strategies: The use of cool pavements. Sustainability, 15(9), Article 7641. https://doi.org/10.3390/su15097641

Khalilov, I., & Eminov, F. (2024). Against the background of global climate changes, the current ecological situation of Azerbaijan’s water resources and the directions of efficient use. Visnyk of V. N. Karazin Kharkiv National University, Series Geology. Geography. Ecology, 61, 392–398. https://doi.org/10.26565/2410-7360-2024-61-31

Leal Filho, W., Wolf, F., Castro-Díaz, R., Li, C., Ojeh, V. N., Gutiérrez, N., Nagy, G. J., Savić, S., Natenzon, C. E., Quasem Al-Amin, A., Maruna, M., & Bönecke, J. (2021). Addressing the urban heat islands effect: A cross-country assessment of the role of green infrastructure. Sustainability, 13(2), Article 753. https://doi.org/10.3390/su13020753

Mammadov, A., & Abdullayev, A. (2024). The main causes of soil contamination with heavy metals (Pb, Cd, Hg) on the northeastern slope of the Lesser Caucasus of the Republic of Azerbaijan. Visnyk of V. N. Karazin Kharkiv National University, Series Geology. Geography. Ecology, (61), 358–368. https://doi.org/10.26565/2410-7360-2024-61-28

Mikayilov, A. M., Jafarova, F. M., Hajiyeva, A. Z. (2025). The grouping of Mill landscapes by desertification factors and risks. News of the National Academy of Sciences of the Republic of Kazakhstan, Series of geology and technical sciences, 1(469), 128–139. https://doi.org/10.32014/2025.2518-170X.480

Peluso, P., Persichetti, G., & Moretti, L. (2022). Effectiveness of road cool pavements, greenery, and canopies to reduce the urban heat island effects. Sustainability, 14(23), Article 16027. https://doi.org/10.3390/su142316027

Sadigov, R. A., Gafarbayli, K. A., & Hasanov, F. H. (2026). Appraisal of current envıronmental sıtuatıon on the Mıl and Karabakh Plaıns ın Azerbaijan. SABRAO Journal of Breeding and Genetics, 58(1), 420–431. http://doi.org/10.54910/sabrao2026.58.1.39

Sultanov, B. N., Gadirly, F. R., & Hajiyeva, G. N. (2025). Impact assessment of Caspian Sea level variations on groundwater in the Absheron coastal zone and associated ecological problems. ANAS Transactions, Earth Sciences, 2, 98–105. https://doi.org/10.33677/ggianas20250200157

Vujovic, S., Haddad, B., Karaky, H., Sebaibi, N., & Boutouil, M. (2021). Urban heat island: Causes, consequences, and mitigation measures with emphasis on reflective and permeable pavements. CivilEng, 2(2), 459–484. https://doi.org/10.3390/civileng2020026

View article in other formats

CrossMark check

CrossMark logo

Published

2026-10-07

How to Cite

Amanova, S., Hajiyeva, A., Ibrahimova, L., & Jafarova, F. (2026). Analysis of urban heat islands in the study of urban environmental problems based on remote sensing. Geodesy and Cartography, 52(S1), S4–S9. https://doi.org/10.3846/gac.2026.24317

Share