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Effects of street geometries on building cooling demand in Nanjing, China

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  • Deng, Ji-Yu
  • Wong, Nyuk Hien
  • Zheng, Xin

Abstract

Urban heat island (UHI) effects are generally related to the urban morphology and urban design parameters such as street and building geometry. Especially in tropical and subtropical regions, the dense urban morphology usually results in not only an increase in temperature, but also the excessive building energy consumption. This paper presents a study on the influence of urban design parameters, such as street aspect ratios and orientations, on building cooling demands in the central area of cities. In this study, building energy simulations were conducted based on various urban scenarios characterized by different canyon geometries by using HTB2 and the Virvil plugin. The weather data needed in the energy simulation were obtained from the ENVI-met calculations. The energy results presented in this study suggest that the potential energy savings could be achieved through the optimization of urban design. Some basic principles are suggested for the street design in subtropical areas with similar climate conditions as Nanjing city. Furthermore, the cooling demands based on the localized and recorded weather data were both investigated and compared. An approximately 20% difference in cooling demand could be caused by the disparities between these two sets of weather data. The comparative analysis of two sets of energy results highlights the importance of implementing localized weather data in building energy simulations.

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  • Deng, Ji-Yu & Wong, Nyuk Hien & Zheng, Xin, 2021. "Effects of street geometries on building cooling demand in Nanjing, China," Renewable and Sustainable Energy Reviews, Elsevier, vol. 142(C).
  • Handle: RePEc:eee:rensus:v:142:y:2021:i:c:s1364032121001568
    DOI: 10.1016/j.rser.2021.110862
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    1. Assimakopoulos, M.N. & Mihalakakou, G. & Flocas, H.A., 2007. "Simulating the thermal behaviour of a building during summer period in the urban environment," Renewable Energy, Elsevier, vol. 32(11), pages 1805-1816.
    2. Xu, Xiaoyu & González, Jorge E. & Shen, Shuanghe & Miao, Shiguang & Dou, Junxia, 2018. "Impacts of urbanization and air pollution on building energy demands — Beijing case study," Applied Energy, Elsevier, vol. 225(C), pages 98-109.
    3. Kikegawa, Yukihiro & Genchi, Yutaka & Kondo, Hiroaki & Hanaki, Keisuke, 2006. "Impacts of city-block-scale countermeasures against urban heat-island phenomena upon a building's energy-consumption for air-conditioning," Applied Energy, Elsevier, vol. 83(6), pages 649-668, June.
    4. Yang, Xiaoshan & Peng, Lilliana L.H. & Jiang, Zhidian & Chen, Yuan & Yao, Lingye & He, Yunfei & Xu, Tianjing, 2020. "Impact of urban heat island on energy demand in buildings: Local climate zones in Nanjing," Applied Energy, Elsevier, vol. 260(C).
    5. Krüger, E. & Pearlmutter, D. & Rasia, F., 2010. "Evaluating the impact of canyon geometry and orientation on cooling loads in a high-mass building in a hot dry environment," Applied Energy, Elsevier, vol. 87(6), pages 2068-2078, June.
    6. Cui, Ying & Yan, Da & Hong, Tianzhen & Ma, Jingjin, 2017. "Temporal and spatial characteristics of the urban heat island in Beijing and the impact on building design and energy performance," Energy, Elsevier, vol. 130(C), pages 286-297.
    7. Li, Xiaoma & Zhou, Yuyu & Yu, Sha & Jia, Gensuo & Li, Huidong & Li, Wenliang, 2019. "Urban heat island impacts on building energy consumption: A review of approaches and findings," Energy, Elsevier, vol. 174(C), pages 407-419.
    8. Taleb, Dana & Abu-Hijleh, Bassam, 2013. "Urban heat islands: Potential effect of organic and structured urban configurations on temperature variations in Dubai, UAE," Renewable Energy, Elsevier, vol. 50(C), pages 747-762.
    9. Akbari, Hashem & Konopacki, Steven, 2004. "Energy effects of heat-island reduction strategies in Toronto, Canada," Energy, Elsevier, vol. 29(2), pages 191-210.
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