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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Using WRF-Urban to Assess Summertime Air Conditioning Electric Loads and Their Impacts on Urban Weather in Beijing
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Using WRF-Urban to Assess Summertime Air Conditioning Electric Loads and Their Impacts on Urban Weather in Beijing

机译:使用WRF-Urban评估夏季空调电荷及其对北京城市天气的影响

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摘要

The air conditioning (AC) electric loads and their impacts on local weather over Beijing during a 5 day heat wave event in 2010 are investigated by using the Weather Research and Forecasting (WRF) model, in which the Noah land surface model with multiparameterization options (Noah-MP) is coupled to the multilayer Building Effect Parameterization and Building Energy Model (BEP+BEM). Compared to the legacy Noah scheme coupled to BEP+BEM, this modeling system shows a better performance, decreasing the root-mean-square error of 2 m air temperature to 1.9°C for urban stations. The simulated AC electric loads in suburban and rural districts are significantly improved by introducing the urban class-dependent building cooled fraction. Analysis reveals that the observed AC electric loads in each district are characterized by a common double peak at 3 p.m. and at 9 p.m. local standard time, and the incorporation of more realistic AC working schedules helps reproduce the evening peak. Waste heat from AC systems has a smaller effect (~1°C) on the afternoon 2 m air temperature than the evening one (1.5~2.4°C) if AC systems work for 24 h and vent sensible waste heat into air. Influences of AC systems can only reach up to ~400 m above the ground for the evening air temperature and humidity due to a shallower urban boundary layer than daytime. Spatially varying maps of AC working schedules and the ratio of sensible to latent waste heat release are critical for correctly simulating the cooling electric loads and capturing the thermal stratification of urban boundary layer.
机译:通过使用天气研究和预测(WRF)模型,研究了2010年5天热浪事件在北京对北京时期天气的空调(AC)电荷及其影响,其中NOAH陆地表面模型具有多分钟选择选项( Noah-MP)耦合到多层建筑效果参数化和建筑能量模型(BEP + BEM)。与耦合到BEP + BEM的遗留NOAH方案相比,该建模系统显示了更好的性能,降低了2米的空气温度为1.9°C的根均方误差。通过引入城市级依赖的建筑冷却分数,郊区和农村地区的模拟交流电荷显着提高。分析表明,每个地区的观察到的AC电负载的特征在于3下午3点的常见双峰。在下午9点。本地标准时间,并纳入更现实的AC工作时间表有助于再现晚上峰值。来自AC系统的余热在午后的效果较小(〜1°C),如果AC系统工作24小时,则在晚上(1.5〜2.4°C),并将清热发泄到空气中。由于较浅的城市边界层,AC系统对夜间空气温度和湿度的影响仅达到〜400米,而不是白天。 AC工作时间表的空间变化地图和潜伏废热释放的比率对于正确模拟冷却电负载并捕获城市边界层的热分层至关重要。

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  • 作者单位

    Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters Nanjing University of Information Science and Technology Nanjing China;

    National Center for Atmospheric Research Boulder CO USA;

    Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters Nanjing University of Information Science and Technology Nanjing China;

    National Center for Atmospheric Research Boulder CO USA;

    National Center for Atmospheric Research Boulder CO USA;

    Beijing Meteorological Service Center Beijing China;

    School of Mathematical and Statistical Sciences and Julie Ann Wrigley Global Institute of Sustainability Arizona State University Tempe AZ USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

    Using WRF-Urban; Assess Summertime; Air Conditioning;

    机译:使用WRF-Urban;评估夏季;空调;

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