Improving Schoolyard Wind Environments: Case Studies in Two Schools in Nanjing

  • Anqi Liu Nanjing Forestry University
  • Qiuxia Xu Nanjing Forestry University
  • Jiahao Gao Nanjing Forestry University
  • Zhen Xu Nanjing Forestry University
  • Lingyun Han Jiangsu Second Normal University
Keywords: schoolyard wind environment, CFD simulation, public open space, urban micro-climate,

Abstract


Wind environment as an essential aspect of urban micro-climate is usually studied as an important factor affecting human wind comfort and thermal comfort in public open space. Less studied is how wind environments influence schoolyard serving for children and teenagers who are more sensitive to air temperature and air pollution. This paper presents a study using XFlow for wind speed evaluation based on CFD (Computational Fluid Dynamics) simulation, and Ecotect Analysis for thermal comfort evaluation. Choosing Nanjing Mochou Lake Primary School and Nanjing NO.13 Middle School Suojin Campus as case studies, it offers an evaluation of wind environments in these two schoolyards and surrounding open spaces. Simulation shows that improvements should be made to build better wind environments around both schools. Scenarios are developed subsequently by adjusting buildings in study areas at the scale of blocks and school buildings, proving the efficiency of improvements for a more comfortable wind environments. This study focuses on schoolyard wind environments from the standpoint of children and teenagers, suggesting that research on urban micro-climate can be expanded in multiple directions so that as many social groups in different ages as possible benefits, i.e. have healthier urban life.

 

Author Biography

Zhen Xu, Nanjing Forestry University
Associate Professor
College of Landscape Architecture

References

Antoniadis, D., Katsoulas, N., & Kittas, C. (2018). Simulation of schoolyard’s microclimate and human thermal comfort under Mediterranean climate conditions: effects of trees and green structures. International Journal of Biometeorology, 62(11), 2025-2036. DOI: 10.1007/s00484-018-1612-5

Bajsanski, I., Stojakovic, V., Tepavcevic, B., Jovanovic, M., & Mitov, D. (2017). An application of the shark skin denticle geometry for windbreak fence design and fabrication. Journal of Bionic Engineering, 14(3), 579-587. DOI: 10.1016/S1672-6529(16)60423-7

Bajsanski, I. V., Milosevic, D. D., & Savic, S. M. (2015). Evaluation and improvement of outdoor thermal comfort in urban areas on extreme temperature days: Applications of automatic algorithms. Building and Environment, 94, 632-643. DOI: 10.1016/j.buildenv.2015.10.019

Du, Y. X., Mak, C. M., & Tang, B. (2018). Effects of building height and porosity on pedestrian level wind comfort in a high-density urban built environment. Building Simulation, 11(6), 1215-1228. DOI: 10.1007/s12273-018-0451-y

Falk, B. (1998). Effects of thermal stress during rest and exercise in the paediatric population. Sports Medicine, 25(4), 221-240. DOI: 10.2165/00007256-199825040-00002

Gan, T. P., Ying, X. Y., & Shen, J. Y. (2019). 基于风环境优化的小学校园布局形态设计[The Planning Strategies of Primary School Campus Based on Wind Environment Optimization]. Architecture & Culture, 181(4), 110-111. DOI: CNKI:SUN:JZYW.0.2019-04-032

Gao, Y. F., Yao, R. M., Li, B. Z., Turkbeyler, E., Luo, Q., & Short, A. (2012). Field studies on the effect of built forms on urban wind environments. Renewable Energy, 46, 148-154. DOI: 10.1016/j.renene.2012.03.005

Howard, L. (2012). The climate of London: Deduced from meteorological observations. Oxford: Cambridge University Press.

Hong Kong Planning Department. (2008). Urban Climatic Map and Standards for Wind Environment: Feasibility Study.

Islam, T., Gauderman, W. J., Berhane, K., McConnell, R., Avol, E., Peters, J. M., & Gilliland, F. D. (2007). Relationship between air pollution, lung function and asthma in adolescents. Thorax, 62(11), 957-963. DOI: 10.1136/thx.2007.078964

Kubota, T., Miura, M., Tominaga, Y., & Mochida, A. (2008). Wind tunnel tests on the relationship between building density and pedestrian-level wind velocity: Development of guidelines for realizing acceptable wind environment in residential neighborhoods. Building and Environment, 43, 1699-1708. DOI: 10.1016/j.buildenv.2007.10.015

Li, H., Guo, B., Han, M. F., Tian, M., & Zhang, J. (2015). Particulate matters pollution characteristic and the correlation between PM (PM2.5, PM10) and meteorological factors during the summer in Shijiazhuang. Journal of Environmental Protection, 6, 457-463. DOI: 10.4236/jep.2015.65044

Moogk-Soulis, C. (2002, October). Schoolyard Heat Islands: A Case Study in Waterloo, Ontario. Technical Aids Consulting Services, 5th Canadian Urban Forest Conference, York, Ontario

Moonen, P., Dorer, V., & Carmeliet, J. (2011). Evaluation of the ventilation potential of courtyards and urban street canyons using RANS and LES. Journal of Wind Engineering and Industrial Aerodynamics, 99(4), 414-423. DOI: 10.1016/j.jweia.2010.12.012

Milosević, D. D., Bajsanski, I. V., & Savic, S. M. (2017). Influence of changing trees locations on thermal comfort on street parking lot and footways. Urban forestry & urban greening, 23, 113-124. DOI: 10.1016/j.ufug.2017.03.011

Ng, E. (2009) Policies and technical guidelines for urban planning of high-density cities: air ventilation assessment (AVA) of Hong Kong. Building and Environment, 44(7), 1478-1488. DOI: 10.1016/j.buildenv.2008.06.013

Niu, J. L., Liu, J. L., Lee, T. C., Lin, Z., Mak, C., Tse, K. T., Tang, B. S., & Kwok, K. C. S. (2015). A new method to assess spatial variations of outdoor thermal comfort: Onsite monitoring results and implications for precinct planning. Building & Environment, 91, 263-270. DOI: 10.1016/j.buildenv.2015.02.017

Oke, T. R. (1973). City size and the urban heat island. Atmospheric Environment, 7(8), 769-779. DOI: 10.1016/0004-6981(73)90140-6

Oke, T. R. (1988). Street design and urban canopy layer climate. Energy and Buildings, 11(1-3), 103-113. DOI: 10.1016/0378-7788(88)90026-6

Perera, F. P. (2008). Children are likely to suffer most from our fossil fuel addiction. Environmental Health Perspectives, 116(8), 987-990. DOI: 10.1289/ehp.11173

Vanos, J. K. (2015). Children’s health and vulnerability in outdoor microclimates: A comprehensive review. Environment International, 76, 1-15. DOI: 10.1016/j.envint.2014.11.016

Vitruvius Pollio, M., Sangallo, G., & Rowland, I. (2003). Ten books on architecture. Roma: Edizione dell’Elefante.

Yang, J. Y., Sun, X., & Shi, X. (2016). 城市中心热环境与空间形态耦合机理及优化设计 [Coupling mechanism between thermal environment and space form and optimization design in city center]. Nanjing: Southeast University Press.

Yuan, C., & Ng, E. (2012). Building porosity for better urban ventilation in high-density cities: A computational parametric study. Building and Environment, 50: 176-189. DOI: 10.1016/j.buildenv.2011.10.023

Published
2020/01/11
Section
Original Research