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Spatial Superposition Method via Model Coupling for Urban Heat Island Albedo Mitigation Strategies

机译:基于模型耦合的城市热岛反照率缓解策略的空间叠加方法

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A spatial superposition design is presented that couples the fifth-generation Pennsylvania State University–National Center for Atmospheric Research Mesoscale Model (MM5) with the National Center of Excellence (NCE) lumped urban thermal model for application to the city of Phoenix, Arizona. This technique utilizes an approach similar to Reynolds decomposition from turbulence theory. The presented decomposition takes the NCE model prediction from a mitigated strategy as the mean temperature and the difference between the NCE and MM5 predictions without mitigation strategy as the perturbed temperature. The goal of this coupled model is to provide spatial variability when simulating mitigation strategies for the urban heat island effect, as compared with the spatially invariant lumped model. A validation analysis was performed incorporating a maximum 35% change from the baseline albedo value for the urban environment. It is shown that the coupled model differs by up to 0.39°C with comparable average surface temperature predictions from MM5. The coupled model was also used to perform analysis of three different albedo-driven spatial mitigation schemes. This resulted in the identification that having a lesser number of mitigated points on a square urban grid in Phoenix with the same average albedo leads to a greater reduction in average hourly temperature.
机译:提出了一种空间叠加设计,该设计将第五代宾夕法尼亚州立大学国家大气研究中尺度模型(MM5)与国家卓越中心(NCE)集总的城市热模型耦合在一起,以应用于亚利桑那州的凤凰城。该技术利用了与湍流理论中的雷诺分解相似的方法。提出的分解将来自缓解策略的NCE模型预测作为平均温度,将不带有缓解策略的NCE和MM5预测之间的差异作为摄动温度。与空间不变集总模型相比,该耦合模型的目标是在模拟城市热岛效应的缓解策略时提供空间可变性。进行了一项验证分析,其中纳入了与城市环境相比基线反照率值最大35%的变化。结果表明,耦合模型与MM5的平均表面温度预测值相差高达0.39°C。耦合模型还用于对三种不同的反照率驱动的空间缓解方案进行分析。这导致人们发现,在凤凰城的一个方形城市网格上,具有相同的平均反照率的缓解点数量较少,导致平均每小时温度的下降幅度更大。

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