Modeling methods to assess urban fluxes and heat island mitigation measures from street to city scale

被引:29
作者
Bozonnet, Emmanuel [1 ,2 ]
Musy, Marjorie [2 ,3 ]
Calmet, Isabelle [2 ,4 ]
Rodriguez, Fabrice [2 ,5 ]
机构
[1] Univ La Rochelle, LaSIE FRE CNRS 3474, F-17042 La Rochelle 1, France
[2] FR CNRS 2488, Inst Rech Sci & Tech Ville, Nantes, France
[3] Ecole Natl Super Architecture Nantes, LUNAM, CERMA UMR CNRS 1563, F-44262 Nantes 2, France
[4] Ecole Cent Nantes, LUNAM, LHEEA UMR CNRS 6598, F-44321 Nantes, France
[5] Inst Francais Sci & Technol Transports Amenagemen, F-44344 Bouguenais, France
关键词
urban heat island mitigation; urban modeling; building simulation; district scale; rainwater management; OUTDOOR THERMAL ENVIRONMENT; MESOSCALE MODEL; ENERGY BUDGET; CANOPY MODEL; WATER-BUDGET; GREEN ROOFS; IMPACT; PARAMETERIZATION; SIMULATION; SURFACE;
D O I
10.1093/ijlct/ctt049
中图分类号
O414.1 [热力学];
学科分类号
摘要
The urban microclimate is due to complex physical interactions with the contribution of water balance, thermo-radiative exchanges and airflows. In this paper, we present and discuss modeling of heat island effects and mitigation techniques in order to give consistent results considering different time and space scales, and different fluxes (heat, water and winds) from ground to urban canopy, including buildings. The models and numerical descriptions are presented in detail and illustrated on typical examples of heat island mitigation techniques. At the neighborhood scale, alternative rainwater management techniques are studied by considering their impact on both seasonal water table depth and surface-atmosphere heat fluxes. Assessing the building thermal performance interactions with the microclimate requires adapted models that have to be refined for a better description of building envelope and systems effects. Two examples at the street and the neighborhood scale, modifying the building radiative properties or using green envelopes, show how simulation brings out the potential benefits of these techniques for the heat island mitigation and building energy performance.
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页码:62 / 77
页数:16
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