A Study on the Strategies of Park City Construction of Chengdu from the Perspective of Urban Heat Island Mitigation

Lichen Wang (1), Kangkang Gu (2), Dong Dong (3)
(1) School of Architecture & Planning of Anhui Jianzhu University, China, China,
(2) School of Architecture & Planning of Anhui Jianzhu University, China, China,
(3) School of Architecture & Planning of Anhui Jianzhu University, China, China

Abstract

In the process of urbanization, various urban problems have become increasingly prominent, and the heat island effect is one of them. The expansion of urban land, the increase in construction intensity and the increase in population make the urban heat island effect even worse. The construction of park cities improves the ecological environment of the city and is considered to have a positive effect on alleviating the heat island effect, but it is not clear whether it has such an effect or not. This article explores whether the construction of Park City can help to improve the urban thermal environment effectively, and also, seek solutions for how to improve the construction of park cities so that the heat island effect can be better mitigated. Landsat8 remote sensing images in 2014 and 2019 were used to estimate the fractional vegetation cover (FVC) and land surface temperature (LST) in the Third Ring Road of Chengdu. Land use data were also introduced into the study to analyze LST changes in different surfaces and FVC.The results indicate that: (1) the area of the heat island zone in the Third Ring Road of Chengdu decreased by 0.91% from 2014 to 2019, and the area of the cold island zone increased by 17.89% ; (2) the urban blue-green space is conductive to mitigating the urban heat island effect, in which the water provides the best mitigation, while impervious surface and bare land may aggravate the urban heat island effect; (3) the FVC in the area of the Third Ring Road in Chengdu is on the rise as a whole, and there is a significant negative correlation between FVC and LST (p < 0.01). Based on the above results, this paper shows that Park City construction is beneficial to alleviate the urban heat island effect, and more attention should be paid to blue-green space layout and quality, along with urban ventilation and FVC control. Our results provide useful input for green space planning and the construction of Park City in the future.

Full text article

Generated from XML file

References

Alekseeva, L.I., Gorlach, I.A., Kislov, A.V. (2019). Vertical structure and seasonal features of the heat island and humidity distribution over Moscow derived from satellite data[J]. Russian Meteorology and Hydrology, 44(8): 571-578. https://doi.org/10.3103/S1068373919080090

Amindin, A., Pouyan, S., Pourghasemi, H.R., Yousefi, S., Tiefenbacher, J.P. (2021). Spatial and temporal analysis of urban heat island using Landsat satellite images[J]. Environmental Science and Pollution Research, 28(30): 41439-41450. https://doi.org/10.1007/S11356-021-13693-0

Guo, G.H., Wu, Z.F., Xiao, R.B., Chen, Y.B., Liu, X.N., Zhang, X.S. (2015). Impacts of urban biophysical composition on land surface temperature in urban heat island clusters[J]. Landscape and Urban Planning, 135: 1-10. https://doi.org/10.1016/j.landurbplan.2014.11.007

Iizuka, S., Xuan, Y.L., Takatori, C., Nakaura, H., Hashizume, A. (2020). Environmental impact assessment of introducing compact city models by downscaling simulations[J]. Sustainable Cities and Society, 63: 102424.4. https://doi.org/10.1016/j.scs.2020.102424

Laaidi, K., Zeghnoun, A., Dousset, B., Bretin, P., Vandentorren, S., Giraudet, E., Gourmelon, F., Pascal, M. (2011). Health Impact of Heat Waves in Urban Heat Islands: How to Estimate the Exposure of the Population?[J]. Epidemiology, 22(1s): S22-22. https://doi.org/10.1097/01.ede.0000391725.38993.c9

Li, S.L., Feng, L., Cao, S., Jia, B.W., Wang, Q.Y., Ma, X.Y. (2021). Effects of vegetation coverage of phytocoenosium on green space temperature in Beijing [J]. Journal of Beijing University of Agriculture, 36(03): 88-94. https://doi.org/10.13473/j.cnki.issn.1002-3186.2021.0316

Li, X.Z., Li, H.Y., Zhang, Q.T., Qiu, G.Y. (2014). Study on reducing effect of different urban landscapes on urban temperature[J]. Ecology and Environmental Sciences, 23(01): 106-112. https://doi.org/10.16258/j.cnki.1674-5906.2014.01.009

Lin, K.X., Ni, J.J., Zhou, M. (2020). Origin of thought, cognition of value, and planning path of Park City[J]. Planners, 36(15): 19-24.

Liu, J., Shen, L., Huang, Y., Deng, X. (2020). Research on the spatial differentiation of characteristics of nocturnal urban heat island intensity in Beijing based on local climate zones[J]. Geography and Geo-information Science, 36(05): 39-45+64.

Luan, Q.Z., Ye, C.H., Liu, Y.H., Li, S.Y., Gao, Y.H. (2014). Effect of urban green land on thermal environment of surroundings based on remote sensing: A case study in Beijing, China[J]. Ecology and Environmental Sciences, 23(02): 252-261. https://doi.org/10.16258/j.cnki.1674-5906.2014.02.004

Miao, S.G., Wang, X.Y., Jiang, W.M., Wang, Y.W., Chen, X.Y. (2013). Impact on atmospheric environment by green space layout in urban planning: A case study on green space planning of Chengdu[J]. City Planning Review, 37(06): 41-46.

Park, J., Kim, J.H., Lee, D.K., Park, C.Y., Jeong, S.G. (2017). The influence of small green space type and structure at the street level on urban heat island mitigation[J]. Urban Forestry & Urban Greening, 21: 203-212. https://doi.org/10.1016/j.ufug.2016.12.005

Ouyang, W., Morakinyo, T.E., Ren, C., Liu, S., Ng, E. (2021). Thermal-irradiant performance of green infrastructure typologies: Field measurement study in a subtropical climate city[J]. Science of the Total Environment, 764: 144635. https://doi.org/10.1016/j.scitotenv.2020.144635

Peng, W.F., Zhou, J.M., Xu, X.L., Luo, H.L. (2017). Dynamic monitoring of fractional vegetation cover in Chengdu Plain and its surrounding area in China[J]. Earth and Environment, 45(02): 193-202. https://doi.org/10.14050/j.cnki.1672-9250.2017.02.011

Peng, X., Liu, X.Y., Xu, Y., Shu, J.S., Liu, M.J., Xu, D.H. (2017). Preliminary analysis of measures to alleviate the heat island effect[J]. Contemporary Horticulture, 64(9): 112-114. https://doi.org/10.14051/j.cnki.xdyy.2017.17.064

Peng, Y.G. (2020). Heat wave characteristics, mortality and effect modification by temperature zones: a time-series study in 130 counties of China, 100(34): 2704. https://doi.org/10.3760/cma.j.issn.0376-2491.2020.34.102

Singh, P., Kikon, N., Verma, P. (2017). Impact of land use change and urbanization on urban heat island in Lucknow city, Central India. A remote sensing based estimate[J]. Sustainable Cities and Society, 32: 100-114. https://doi.org/10.1016/j.scs.2017.02.018

Sun, Z. (2020). Impact of urban morphology factors on thermal environment in high density urban areas: A case of Beijing within 5th Ring Road[J]. Ecology and Environmental Sciences, 29(10): 2020-2027. https://doi.org/10.16258/j.cnki.1674-5906.2020.10.012

Tian, P., Li, J.L., Cao, L.D., Pu, R.L., Wang, Z.Y., Zhang, H.T., Chen, H.L., Gong, H.B. (2021). Assessing spatiotemporal characteristics of urban heat islands from the perspective of an urban expansion and green infrastructure[J]. Sustainable Cities and Society, 74: 103208. https://doi.org/10.1016/J.SCS.2021.103208

Wang, Y.Y., Guo, Z.Y., Han, J. (2021). The relationship between urban heat island and air pollutants and them with influencing factors in the Yangtze River Delta, China[J]. Ecological Indicators, 29: 107976. https://doi.org/10.1016/J.ECOLIND.2021.107976

Yang, P., Cheng, S.Y., Gao, Q., Zhi, L.H., Zhang, Y.P., Zhou, J.B., Zhou, Y. (2021). Spatio-temporal evolution and interrelationship between underlying surface types and thermal environment in the main urban area of Shijiazhuang city[J]. Hubei Agricultural Sciences, 60(20): 48-56. https://doi.org/10.14088/j.cnki.issn0439-8114.2021.20.009

Yuan, C., Adelia, A.S., Mei, S.J., He. W.H., Li, X.X., Norford, L. (2020). Mitigating intensity of urban heat island by better understanding on urban morphology and anthropogenic heat dispersion[J]. Building and Environment, 176: 106876. https://doi.org/10.1016/j.buildenv.2020.106876

Yun, Z., Wu, X.L., Zang, S.Y., Wu, C.S., Li, M. (2017). Cooling effect of green patches based on TM image in Harbin downtown city[J]. Scientia Geographica Sinica, 37(10): 1600-1608. https://doi.org/10.13249/j.cnki.sgs.2017.10.018

Zhang, K.Y., Xu, C.X., Cui, G.X., Zhang, Z.S., Wang, Z.S. (2007). Numerical simulation of urban heat island evolution and its effect on pollutant transport[J]. Journal of Meteorology and Environment, 23(03): 10-14.

Zong, L., Liu, S.H., Yang, Y.J., Ren, G.Y., Yu, M., Zhang, Y.H., Li, Y.B. (2021). Synergistic influence of local climate zones and wind speeds on the urban heat island and heat waves in the megacity of Beijing, China[J]. Frontiers in Earth Science, 9: 673786. https://doi.org/10.3389/FEART.2021.673786

Authors

Lichen Wang
[email protected] (Primary Contact)
Kangkang Gu
Dong Dong
Wang, L., Gu, K., & Dong, D. (2022). A Study on the Strategies of Park City Construction of Chengdu from the Perspective of Urban Heat Island Mitigation. Environmental Science & Sustainable Development, 7(1), 91–104. https://doi.org/10.21625/essd.v7i1.869

Article Details