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An adaptive predicted percentage dissatisfied model based on the air-conditioner turning-on behaviors in the residential buildings of China

机译:基于中国住宅建筑空调车辆行为的自适应预测百分比不满模型

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摘要

To ease the Predicted Percentage of Dissatisfied (PPD) measurement and calculation and consider the adaptive behaviors of residents, the present research proposed an adaptive thermal discomfort evaluation model: Air-conditioner based Adaptive Predicted Percentage of Dissatisfied (aaPPD). First, the indoor temperature, outdoor temperature, and humidity data of the residential buildings in five cities within three climate regions in China were collected. Second, through the air-conditioner-turning-on (ATO) judgment algorithm, the data from when the air conditioner was turned on could be extracted from the original data, and then transformed via the Monte Carlo sampling method to obtain a dataset of the ATO percentage of residents within specific indoor and outdoor environments. Finally, a nonlinear model was built according to this dataset. The final R-2 of this model was 0.833. This model utilized data from resident ATO behaviors as the basis for determining the thermal discomfort and avoiding the psychological impact on the subjects when filling out the thermal sensation vote questionnaire. Moreover, when compared with the PPD model, the aaPPD model simplified the variables to obtain the calculation parameters more conveniently and ease the thermal discomfort testing and predictions, which could allow for better adaptation to the early architectural design stage working characteristics.
机译:为了简化预测的不满(PPD)测量和计算并考虑居民的适应行为,本研究提出了自适应热不适评估模型:空调基于空调的自适应预测百分比的不满意(AAPPD)。首先,收集了中国三个气候区内五个城市住宅楼的室内温度,室外温度和湿度数据。二,通过空调器打开(ATO)判断算法,可以从原始数据中提取空调接通时的数据,然后通过蒙特卡罗采样方法转换为获取数据集特定室内和室外环境中居民的百分比。最后,根据该数据集建立了非线性模型。该模型的最终R-2为0.833。该模型利用来自居民ATO行为的数据作为确定热不适的基础,并在填充热敏感应表问卷时避免对受试者的心理影响。此外,与PPD模型相比,AAPPD模型简化了变量以更方便地获得计算参数,并缓解热不适测试和预测,这可以允许更好地适应早期的建筑设计阶段工作特性。

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