Climate Change and Urban Heat Islands in India: A Review Across Nine Urban Agglomerations

Year : 2026 | Volume : 03 | Issue : 01 | Page : 19 34
    By

    Nidhi Sinha,

  1. Assistant Professor, Department of Geography, Ram Krishna Dwarika Mahavidyalaya, Patliputra University, Patna, Bihar, India

Abstract

Since 1901, anthropogenic climate change has raised India’s mean surface temperatures by about 0.9°C, compounding warming. Rapid urbanization creates persistent Urban Heat Islands (UHIs), making cities dangerously hotter than rural areas. A combination of these forces presents acute thermal hazards to hundreds of millions of urban dwellers. The paper discusses the emergence and intensification of UHI in nine large Indian cities (Delhi-NCR, Ahmedabad, Chennai, Hyderabad, Kolkata, Pune, Bengaluru, Mumbai, and Patna) between 2001 and 2024. Based on MODIS-based data on the Intensity of Surface Urban Heat Island at night (SUHII) and land-use change, and IMD meteorological data, the study reports steady decadal increases in SUHII in all cities. The value of Ahmedabad was the highest absolute (3.1 °C); Bengaluru had the highest relative change (67 percent). The expansion of the built-up area and a decrease in the vegetation cover become the central factors in each city under consideration. The understudied yet acutely susceptible node in the Indo-Gangetic Plain, Patna, is given special consideration. The paper concludes with policy measures that include greening the urban areas, protection of water bodies, the implementation of cool roofs, and also the expansion of the heat action plans to the secondary cities. Furthermore, the study highlights that increasing heat stress in urban environments can adversely affect public health, energy demand, labor productivity, and overall quality of life. Vulnerable populations, including the elderly, children, and low-income communities, are disproportionately affected by prolonged exposure to elevated temperatures. Strengthening climate-resilient urban planning, integrating sustainable infrastructure, and adopting nature-based solutions are essential strategies to mitigate future urban heat risks and enhance adaptive capacity across rapidly growing Indian cities.

Keywords: Urban heat Island (UHI); surface UHI intensity (SUHII); land use land cover change; climate change; heat stress; multi-city India; urban greening; Patna

[This article belongs to International Journal of Climate Conditions ]

How to cite this article:
Nidhi Sinha. Climate Change and Urban Heat Islands in India: A Review Across Nine Urban Agglomerations. International Journal of Climate Conditions. 2026; 03(01):19-34.
How to cite this URL:
Nidhi Sinha. Climate Change and Urban Heat Islands in India: A Review Across Nine Urban Agglomerations. International Journal of Climate Conditions. 2026; 03(01):19-34. Available from: https://journals.stmjournals.com/ijcc/article=2026/view=244973


References

  1. Arunab KS, Mathew A. Geospatial and statistical analysis of urban heat islands and thermally vulnerable zones in Bangalore and Hyderabad cities in India. Remote Sensing Applications: Society and Environment. 2023 Nov 1;32(1-2):101049. https://doi.org/10.1016/j.rsase.2023.101049
  2. Azhar GS, Mavalankar D, Nori-Sarma A, Rajiva A, Dutta P, Jaiswal A, Sheffield P, Knowlton K, Hess JJ. Heat-related mortality in India: excess all-cause mortality associated with the 2010 Ahmedabad heat wave. PloS one. 2014 Mar 14;9(3):e91831. https://doi.org/10.1371/journal.pone.0091831
  3. Barat A, Kumar S, Kumar P, Parth Sarthi P. Characteristics of surface urban heat island (SUHI) over the Gangetic Plain of Bihar, India. Asia-Pacific Journal of Atmospheric Sciences. 2018 May;54(2):205-14. https://doi.org/10.1007/s13143-018-0004-4
  4. Central Pollution Control Board. Status of water quality in lakes and ponds across major Indian cities. New Delhi: Ministry of Environment, Forest and Climate Change, Government of India; 2022. https://cpcb.nic.in/nwmp-data-2022/
  5. Kaur S, Somvanshi A. Urban heat stress in major cities of India: Delhi (Northwest India). Urban Lab-Centre for Science and Environment Analysis. 2022:1-9. https://www.cseindia.org/urban-heat-stress-Delhi.pdf
  6. Centre for Science and Environment. Decoding urban heat stress in Indian cities. CSE Press Release. 2024 May. https://www.cseindia.org/cse-study-tracks-heat-wave-exposes-dangerous-trends-in-india-s-biggest-cities-12205
  7. Council on Energy, Environment and Water. How can India map its risks of invisible extreme heatwave disasters? CEEW Policy Brief. 2023. https://www.ceew.in/sites/default/files/ceew-how-extreme-heat-is-impacting-india-final-web-file.pdf
  8. DataForIndia / IMD. Heating up: India’s temperature trends 1901–2024. In: The Big Shift Series. 2025. https://www.dataforindia.com/the-big-shift/heating-up/
  9. ETV Bharat. Heat island: Patna gets hotter with urban sprawl; a wake-up call for pollution control panel [Internet]. 2023 Oct 12 https://www.etvbharat.com/english/state/bihar/heat-island-patna-gets-hotter-with-urban-sprawl-wake-up-call-for-pollution-control-panel/na20231012095013863863051
  10. Mahata D, Shekhar S, Ravi K. Urban expansion influences on land use and land cover changes in Kolkata metropolitan region: a geo-spatial study. GeoJournal. 2024 Oct 23;89(6):237. https://doi.org/10.1007/s10708-024-11236-x
  11. Gohain KJ, Mohammad P, Goswami A. Assessing the impact of land use land cover changes on land surface temperature over Pune city, India. Quaternary International. 2021 Feb 20;575:259-69. DOI:1016/j.quaint.2020.04.052
  12. Howard L. The climate of London: deduced from meteorological observations. Cambridge University Press; 2012 May 10. https://urban-climate.org/wp-content/uploads/2023/03/LukeHoward_Climate-of-London-V1.pdf
  13. Indian Meteorological Department. Annual climate summary 2023. New Delhi: Ministry of Earth Sciences, Government of India; 2023. https://www.imdpune.gov.in/cmpg/Product/Annual_Climate_Summary/annual_summary_2023.pdf
  14. Arias P, Bellouin N, Coppola E, Jones R, Krinner G, Marotzke J, Naik V, Palmer M, Plattner GK, Rogelj J, Rojas M. Climate Change 2021: the physical science basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change; technical summary. https://www.ipcc.ch/report/ar6/wg1/downloads/report/IPCC_AR6_WGI_SummaryVolume.pdf
  15. International Labour Organization. Working on a warmer planet: The impact of heat stress on labour productivity and decent work. Geneva: ILO Publications; 2019. https://www.ilo.org/sites/default/files/wcmsp5/groups/public/@dgreports/@dcomm/@publ/documents/publication/wcms_711919.pdf
  16. Keerthi N, Chundeli A. Land use land cover and land surface temperature study in Bengaluru. ISVS e-Journal. 2023;9(5)334-345. https://isvshome.com/pdf/ISVS_9-5/ISVS_9.5.23_Keerthi.pdf
  17. Mahadevia D, Pathak M, Bhatia N, Patel S. Climate change, heat waves and thermal comfort—reflections on housing policy in India. Environment and Urbanization ASIA. 2020 Mar;11(1):29-50.
  18. Mahata B, Sahu SS, Sardar A, Laxmikanta R, Maity M. Spatiotemporal dynamics of land use/land cover (LULC) changes and its impact on land surface temperature: A case study in New Town Kolkata, eastern India. Regional Sustainability. 2024 Jun 1;5(2):100138. https://doi.org/10.1016/j.regsus.2024.100138
  19. Banerjee S, Padmakumari B, Ramana MV. Intensification and spatial shifts of heatwave hotspot across India under climate and ENSO influences with health risk assessment. Scientific Reports. 2026 Feb 12. file:///C:/Users/STM-Home1/Downloads/s41598-026-38289-x.pdf
  20. Mandvikar K, Kumar N, Supe H, Singh D, Gupta A, Kumar P, Meraj G, Khan ID, Kouser A, Pandey SK, Avtar R. Evaluating heat health risk in Indian cities: geospatial and socio-ecological analysis. World development sustainability. 2024 Dec 1;5:100180. https://doi.org/10.1016/j.wds.2024.100180
  21. Manoli G, Fatichi S, Schläpfer M, Yu K, Crowther TW, Meili N, Burlando P, Katul GG, Bou-Zeid E. Magnitude of urban heat islands largely explained by climate and population. Nature. 2019 Sep 5;573(7772):55-60. https://doi.org/10.1038/s41586-019-1512-9
  22. Jain M. Two decades of nighttime surface urban heat island intensity analysis over nine major populated cities of India and implications for heat stress. Frontiers in Sustainable Cities. 2023 Feb 16;5:1084573. https://doi.org/10.3389/frsc.2023.1084573
  23. Nayak S, Vinod A, Prasad AK. Spatial characteristics and temporal trend of urban heat island effect over major cities in India using long-term space-based MODIS land surface temperature observations (2000–2023). MDPI Applied Sciences. 2023 Dec 17;13(24):13323. https://doi.org/10.3390/app132413323
  24. Mohammad P, Goswami A, Bonafoni S. The impact of the land cover dynamics on surface urban heat island variations in semi-arid cities: a case study in Ahmedabad City, India, using multi-sensor/source data. Sensors. 2019 Aug 26;19(17):3701. https://doi.org/10.3390/s19173701
  25. National Remote Sensing Centre. Annual land use and land cover atlas of India. Hyderabad: Indian Space Research Organisation; 2023. Summary: https://www.iasgyan.in/daily-current-affairs/annual-land-use-and-land-cover-atlas-of-india
  26. Oke TR. City size and the urban heat island. Atmospheric Environment (1967). 1973 Aug 1;7(8):769-79. https://doi.org/10.1016/0004-6981(73)90140-6
  27. Oke TR. The energetic basis of the urban heat island. Quarterly journal of the royal meteorological society. 1982 Jan;108(455):1-24.
  28. Raman E, Sharma P, Anand S. Spatio-Temporal Assessment of Land Use Land Cover Changes Affecting Regional Ecology in Patna Urban Agglomeration (PUA) in Bihar, India During 1990 to 2024. Research in Ecology. 2025;7(1):1-4. https://doi.org/10.30564/re.v7i1.7872
  29. Ramachandra TV, Aithal BH, Sanna DD. Insights to urban dynamics through landscape spatial pattern analysis. International journal of applied earth observation and geoinformation. 2012 Aug 1;18(114):329-43. DOI:1016/j.jag.2012.03.005
  30. Raj A, Anjali A, Singh VK, Semwal VB. Mapping urban heat islands in Pune, India: ecological impacts and environmental challenges. Remote Sensing Letters. 2025 Jun 3;16(6):654-64. https://doi.org/10.1080/2150704X.2025.2486319
  31. Haldar S, Dey P. Assessing the cooling impact of the urban park during pre-and post-cyclone using Landsat images. Spatial Information Research. 2024 Dec;32(6):757-73.
  32. Ahmad M, Saqib M, Ahmad SN, Jamal S, Mir AY. Normalized difference spectral indices and urban land cover as indicators of urban heat island effect: a case study of Patna Municipal Corporation. Geology, Ecology, and Landscapes. 2026 Jan 2;10(1):350-70. https://doi.org/10.1080/24749508.2025.2451479
  33. United Nations Department of Economic and Social Affairs. World urbanization prospects: The 2022 revision. New York: United Nations Publications; 2022. https://digitallibrary.un.org/record/3922090?v=pdf
  34. Sharma M, Kumar V, Kumar S. A systematic review of urban sprawl and land use/land cover change studies in India. Sustainable Environment. 2024 Dec 31;10(1):2331269.. https://doi.org/10.1080/27658511.2024.2331269
  35. Voogt JA, Oke TR. Thermal remote sensing of urban climates. Remote sensing of environment. 2003 Aug 15;86(3):370-84. https://doi.org/10.1016/S0034-4257(03)00079-8
  36. Yadav A, Kumar R, Swarup S. Remote sensing image-based analysis of the urban heat island effect in relation to the normalized difference vegetation index (NDVI): A case study of patna municipal corporation. Int. J. Res. Appl. Sci. Eng. Technol.(IJRASET). 2023 Jan;11(1):1143-55. https://doi.org/10.22214/ijraset.2023.48777
  37. Zhou D, Xiao J, Bonafoni S, Berger C, Deilami K, Zhou Y, Frolking S, Yao R, Qiao Z, Sobrino JA. Satellite remote sensing of surface urban heat islands: Progress, challenges, and perspectives. Remote Sensing. 2018 Dec 29;11(1):48. https://doi.org/10.3390/rs11010048

Regular Issue Subscription Review Article
Volume 03
Issue 01
Received 07/05/2026
Accepted 08/05/2026
Published 09/05/2026
Publication Time 2 Days


Login


My IP

PlumX Metrics