Peran Hutan Kota dalam Menurunkan Suhu Lingkungan dan Polusi Udara

Author


Misbul Hadi(1Mail), Madjid Ramadhana(2), Fauzan Syahmia(3), Salwa Mutiaa(4), Muhammad Ravia(5), Raja Amandaa(6), Abran Azizia(7),
(1) Universitas Malikussaleh, Indonesia
(2) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,
(3) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,
(4) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,
(5) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,
(6) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,
(7) Jurusan Teknik Sipil, Universitas Malikussaleh; Aceh Utara, Aceh, Indonesia,

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Available online: 2026-07-30  |  Published : 2026-07-30
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Abstract


The Urban Heat Island (UHI) phenomenon occurs when temperatures in urban areas are significantly higher than those in surrounding rural regions. This is primarily caused by the concentration of buildings, vehicles, and human activities that generate and retain heat. As a result, cities become considerably warmer, especially during the daytime, leading to reduced thermal comfort and a decline in residents' quality of life. This study examines the role of urban forests in mitigating this issue. Using a literature review method, the researcher analyzed various scientific sources to understand how urban forests contribute to lowering ambient temperatures and improving air quality. The findings indicate that trees in urban environments can reduce air temperatures by approximately 18C through shading and evapotranspiration. In addition, urban forests play a crucial role in absorbing carbon dioxide and mitigating the impacts of greenhouse gas emissions. The cooling effectiveness depends on factors such as tree species, canopy density, and the spatial arrangement of green spaces within the city. Therefore, the development and maintenance of urban forests represent an effective nature-based solution for creating cooler, healthier, and more sustainable cities in the face of increasingly extreme climate change.

Keywords


Urban Heat Island; Urban Forests; Green Infrastructure; Climate Change; Sustainable Cities

References


Shen, X., Chen, M., Li, X., Gao, S., Yang, Q., Wen, Y., & Sun, Q. (2024). Advancing climate resilience through a geo-design framework: Strengthening urban and community forestry for sustainable environmental design. Journal of Forestry Research, 35(1). https://doi.org/10.1007/s11676-024-01772-0

Yuan, T. (2024). The role of green infrastructure in mitigating the urban heat island effect. Open Journal of Applied Sciences, 14(11), 31553170. https://doi.org/10.4236/ojapps.2024.1411207

Anindita, R., Martono, E., & Nurjani, E. (2023). Urban cooling island vs urban heat island, who is the winner? Study of the green spaces effect in cooling down of urban heat in Kapanewon Depok, Sleman, Yogyakarta, Indonesia. E3S Web of Conferences, 468, Artikel 10012. https://doi.org/10.1051/e3sconf/202346810012

Wu, Q., Huang, Y., Irga, P. J., Kumar, P., Li, W., Wei, S., Shon, H. K., Lei, C., & Zhou, J. L. (2024). Synergistic control of urban heat island and urban pollution island effects using green infrastructure. Journal of Environmental Management, 370, Artikel 122985. https://doi.org/10.1016/j.jenvman.2024.122985

Ahongshangbam, J., Kulmala, L., Soininen, J., Frhauf, Y., Karvinen, E., Salmon, Y., Lintunen, A., Karvonen, A., & Jrvi, L. (2023). Sap flow and leaf gas exchange response to a drought and heatwave in urban green spaces in a Nordic city. Biogeosciences, 20(21), 44554474. https://doi.org/10.5194/bg-20-4455-2023

D. H. Silaban and R. R. Dewi, "Pengaruh inovasi hijau, efisiensi ekologi, strategi bisnis, investasi informasi teknologi, dan profitabilitas terhadap nilai perusahaan," 2023.

Sabir, M. A., Ahmad, S., Hussain, M., Ali, A., Khan, M. I., & Ahmad, I. (2024). Investigating the influence of seasonal variability and urban green spaces on ambient air quality in an urban environment. Polish Journal of Environmental Studies. https://doi.org/10.15244/pjoes/183564

Rosenberger, L., Leandro, J., Wood, R. R., Rtzer, T., & Helmreich, B. (2024). Influence of age, soil volume, and climate change on water availability at urban tree sites. Sustainable Cities and Society, 113, Artikel 105680. https://doi.org/10.1016/j.scs.2024.105680

Islam, S., Karipot, A., Bhawar, R., Sinha, P. C., Kedia, S., & Khare, M. (2024). Urban heat island effect in India: A review of current status, impact and mitigation strategies. Deleted Journal, 1(1). https://doi.org/10.1007/s44327-024-00033-3

Linhares, C. S. F., Gonalves, R., Martins, L., & Knapic, S. (2021). Structural stability of urban trees using visual and instrumental techniques: A review. Forests, 12(12), Artikel 1752. https://doi.org/10.3390/f12121752

Purohit, S. (2024). The role of urban green spaces in mitigating urban heat island effect amidst climate change. Research Journal of Chemistry and Environment, 29(1), 75. https://doi.org/10.3390/su17136132

Zawadzka, J., Harris, J. A., & Corstanje, R. (2021). Assessment of heat mitigation capacity of urban greenspaces with the use of InVEST urban cooling model, verified with day-time land surface temperature data. Landscape and Urban Planning, 214, Artikel 104163. https://doi.org/10.1016/j.landurbplan.2021.104163

Kumar, P., Debele, S. E., Sahani, J., Rawat, N., Marti-Cardona, B., Alfieri, S. M., ... Basu, B. (2024). Urban heat mitigation by green and blue infrastructure: Drivers, effectiveness, and future needs. The Innovation, 5(2), Artikel 100588. https://doi.org/10.1016/j.xinn.2024.100588

Jones, L. (2022). A typology for urban Green Infrastructure to guide multifunctional planning of nature-based solutions. Nature-Based Solutions, 2, Artikel 100041. https://doi.org/10.1016/j.nbsj.2022.100041

H. Li, Y. Zhao, C. Wang, D. rge-Vorsatz, J. Carmeliet, and R. Bardhan, "Cooling efficacy of trees across cities is determined by background climate, urban morphology, and tree trait," Communications Earth & Environment, vol. 5, no. 1, 2024. https://doi.org/10.1038/s43247-024-01908-4

Li, H., Zhao, Y., Wang, C., rge-Vorsatz, D., Carmeliet, J., & Bardhan, R. (2024). Cooling efficacy of trees across cities is determined by background climate, urban morphology, and tree trait. Communications Earth & Environment, 5(1). https://doi.org/10.1038/s43247-024-01908-4

Jensen, N. F., Buch-Hansen, T. C., & Du, G. (2023). Grnne tage: Status p viden og erfaringer om grnne tage (Laporan No. 15). Technical University of Denmark.

Chapman, S. (2018). The impact of urban growth and climate change on heat stress in a sub-tropical Australian city [Disertasi doktor, The University of Queensland]. https://doi.org/10.14264/uql.2019.74

Khoiruman, A. M. (2025). Estimasi simpanan karbon pada tegakan pohon di Taman Diponegoro, Kelurahan Lempongsari, Kecamatan Gajahmungkur, Kota Semarang. JAGO TOLIS: Jurnal Agrokompleks Tolis, 5(2), 113. https://doi.org/10.56630/jago.v5i2.790

Bartesaghi-Koc, C., Osmond, P., & Peters, A. (2018). Evaluating the cooling effects of green infrastructure: A systematic review of methods, indicators and data sources. Solar Energy, 166, 486508. https://doi.org/10.1016/j.solener.2018.03.008

Canonne, D., Herpin, S., Thierry, J., Le Bras, C., Dubuc, B., Ledroit, L., Cesbron, D., Saudreau, M., Bournet, P.-E., & Demotes-Mainard, S. (2025). Urban tree architectural modifications over the growing season and water restriction significantly contribute to variations in climate services. Agricultural and Forest Meteorology, 372, Artikel 110694. https://doi.org/10.1016/j.agrformet.2025.110694


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