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Predicted and actual indoor environmental quality: Verification of occupants' behaviour models in residential buildings

机译:预测和实际的室内环境质量:住宅建筑中居住者行为模型的验证

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摘要

Occupants' interactions with the building envelope and building systems can have a large impact on the indoor environment and energy consumption in a building. As a consequence, any realistic forecast of building performance must include realistic models of the occupants' interactions with the building controls (windows, thermostats, solar shading etc.). During the last decade, studies about stochastic models of occupants' behaviour in relation to control of the indoor environment have been published. Often the overall aim of these models is to enable more reliable predictions of building performance using building energy performance simulations (BEPS). However, the validity of these models has only been sparsely tested. In this paper, stochastic models of occupants' behaviour from literature were tested against measurements in five apartments. In a monitoring campaign, measurements of indoor temperature, relative humidity and CO2 concentration was measured in the living room and bedroom at five minute intervals in five apartments with similar layout in a building located in Copenhagen, Denmark. Outdoor temperature, relative humidity, wind speed and solar radiation were obtained from a weather station close by. The stochastic models of window opening and heating set-point adjustments were implemented in the BEPS tool IDA ICE. Two apartments from the monitoring campaign were simulated using the implemented models and the measured weather data. The results were compared to measurements from the monitoring campaign to get an estimate of the forecast's realism. The simulations resulted in realistic predictions in a sense that the measured values were within or close to the range of the simulated values. The variation in the simulated and measured variables between apartments and over time was similar. However, comparisons of the average stochastic predictions with the measured temperatures, relative humidity and CO2 concentrations revealed that the models did not predict the actual indoor environmental conditions well.
机译:居住者与建筑物围护结构和建筑物系统之间的相互作用可能会对建筑物的室内环境和能源消耗产生重大影响。因此,对建筑物性能的任何现实预测都必须包括居住者与建筑物控件(窗户,恒温器,遮阳板等)相互作用的真实模型。在过去的十年中,已经发表了关于乘员行为与室内环境控制有关的随机模型的研究。这些模型的总体目标通常是使用建筑物能源性能模拟(BEPS)来实现对建筑物性能的更可靠的预测。但是,这些模型的有效性仅经过了稀疏的测试。在本文中,我们从五个公寓的测量中测试了来自文献的居民行为的随机模型。在一项监测活动中,在位于丹麦哥本哈根的一栋建筑物中,在五间间隔相似的公寓中,以五分钟的间隔对客厅和卧室的室内温度,相对湿度和二氧化碳浓度进行了测量。室外温度,相对湿度,风速和太阳辐射是从附近的气象站获得的。 BEPS工具IDA ICE中实施了开窗和加热设定点调整的随机模型。使用实施的模型和实测的天气数据对监控活动中的两套公寓进行了模拟。将结果与监视活动的测量结果进行比较,以获得对预测现实性的估计。从某种意义上说,模拟得出的实际预测是测量值在模拟值的范围内或附近。公寓之间以及随时间变化的模拟和测量变量的变化相似。但是,将平均随机预测与测得的温度,相对湿度和CO2浓度进行比较后发现,这些模型不能很好地预测实际的室内环境条件。

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