Impact of land use land cover changes on urban temperature in Jakarta: insights from an urban boundary layer climate model

被引:0
作者
Maheng, Dikman [1 ,2 ,3 ]
Pathirana, Assela [2 ]
Bhattacharya, Biswa [4 ]
Zevenbergen, Chris [2 ,5 ]
Lauwaet, Dirk [6 ]
Siswanto, Siswanto [7 ]
Suwondo, Aries [7 ]
机构
[1] Delft Univ Technol, Fac Civil Engn & Geosci, Delft, Netherlands
[2] Inst Water Educ, Dept Coastal & Urban Risk & Resilience, IHE Delft, Delft, Netherlands
[3] Univ Muhammadiyah Kendari, Dept Civil Engn, Fac Engn, Kendari, Indonesia
[4] Inst Water Educ, Dept Hydro Informat & Socio Tech Innovat, IHE Delft, Delft, Netherlands
[5] Delft Univ Technol, Fac Architecture & Built Environm, Dept Urbanism, Delft, Netherlands
[6] VITO Flemish Inst Technol Res, Urban Climate Modelling, Mol, Belgium
[7] Ctr Appl Climate Serv Agcy Meteorol Climatol & Geo, Jakarta, Indonesia
关键词
urbanization; land use land cover changes; urban temperature changes; Jakarta; UrbClim; HEAT-ISLAND; ECOSYSTEM SERVICES; GREEN SPACE; CITY; URBANIZATION; AREA;
D O I
10.3389/fenvs.2024.1399041
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Urbanization is one of the important drivers of increasing local temperatures. As cities and urban areas evolve, extensive land use and land cover (LULC) changes alter the physical characteristics of surface materials. This modification results in reduced evapotranspiration rates, ultimately contributing to higher surface and air temperatures. This study investigated the impact of urbanization on urban temperature in Jakarta. Urban temperature was simulated for a 20-year time period (1995-2014) by the urban boundary layer climate model UrbClim, using LULC data for both 1995 and 2014. Temperature changes were analysed by assessing the temperature anomaly across different LULC change classes divided into four main classes namely no built-up changes (BB), no green spaces changes (GG), built-up to green spaces (BG), and green spaces to built-up (GB). The study revealed that the conversion of green spaces to built-up areas (GB) had the most significant impact on the increase in air temperature. This was indicated by the mean values of the temperature anomaly of GB of about 0.24 degrees C followed by GG, BB, and BG with the mean values of the temperature anomaly of about 0.20 degrees C, 0.19 degrees C, 0.17 degrees C, respectively. The different temperature anomalies of the LULC change classes indicate that green spaces have an important role in maintaining local climate. Hence, it is important for local government to effectively manage the composition, the quantity, as well as the distribution of green spaces within a city. By looking at temperature anomalies of LULC change classes, the present study provides an alternative approach to many existing methods that provide general information about temperature changes, without specifically analyzing the effects of LULC transformations.
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页数:13
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[21]   Satellite monitoring of urbanization and environmental impacts-A comparison of Stockholm and Shanghai [J].
Haas, Jan ;
Furberg, Dorothy ;
Ban, Yifang .
INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION, 2015, 38 :138-149
[22]   The impact of the London Olympic Parkland on the urban heat island [J].
Hamilton, Ian ;
Stocker, Jenny ;
Evans, Stephen ;
Davies, Michael ;
Carruthers, David .
JOURNAL OF BUILDING PERFORMANCE SIMULATION, 2014, 7 (02) :119-132
[23]   Performance analysis of the urban climate model MUKLIMO_3 for three extreme heatwave events in Bern [J].
Huerzeler, Andre ;
Hollosi, Brigitta ;
Burger, Moritz ;
Gubler, Moritz ;
Broennimann, Stefan .
CITY AND ENVIRONMENT INTERACTIONS, 2022, 16
[24]   Impact of Land Cover Changes on Land Surface Temperature and Human Thermal Comfort in Dhaka City of Bangladesh [J].
Imran, H. M. ;
Hossain, Anwar ;
Islam, A. K. M. Saiful ;
Rahman, Ataur ;
Bhuiyan, Md Abul Ehsan ;
Paul, Supria ;
Alam, Akramul .
EARTH SYSTEMS AND ENVIRONMENT, 2021, 5 (03) :667-693
[25]   Heatstroke Risk Predictions for Current and Near-Future Summers in Sendai, Japan, Based on Mesoscale WRF Simulations [J].
Kasai, Masataka ;
Okaze, Tsubasa ;
Mochida, Akashi ;
Hanaoka, Kazumasa .
SUSTAINABILITY, 2017, 9 (08)
[26]   How to make a city climate-proof, addressing the urban heat island effect [J].
Kleerekoper, Laura ;
van Esch, Marjolein ;
Salcedo, Tadeo Baldiri .
RESOURCES CONSERVATION AND RECYCLING, 2012, 64 :30-38
[27]   London's urban heat island: Impact on current and future energy consumption in office buildings [J].
Kolokotroni, M. ;
Ren, X. ;
Davies, M. ;
Mavrogianni, A. .
ENERGY AND BUILDINGS, 2012, 47 :302-311
[28]   A study of the hourly variability of the urban heat island effect in the Greater Athens Area during summer [J].
Kourtidis, K. ;
Georgoulias, A. K. ;
Rapsomanikis, S. ;
Amiridis, V. ;
Keramitsoglou, I. ;
Hooyberghs, H. ;
Maiheu, B. ;
Melas, D. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2015, 517 :162-177
[29]   Impacts of land use changes from the Hanoi Master Plan 2030 on urban heat islands: Part 1. Cooling effects of proposed green strategies [J].
Kubota, Tetsu ;
Lee, Han Soo ;
Trihamdani, Andhang Rakhmat ;
Tran Thi Thu Phuong ;
Tanaka, Takahiro ;
Matsuo, Kaoru .
SUSTAINABLE CITIES AND SOCIETY, 2017, 32 :295-317
[30]   Using Moran's I and GIS to study the spatial pattern of land surface temperature in relation to land use/cover around a thermal power plant in Singrauli district, Madhya Pradesh, India [J].
Kumari, Maya ;
Sarma, Kiranmay ;
Sharma, Richa .
REMOTE SENSING APPLICATIONS-SOCIETY AND ENVIRONMENT, 2019, 15