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Overall heat loss coefficient and domestic energy gain factor for single-family buildings

机译:单户住宅的总热损失系数和家庭能源获取因子

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摘要

In this work we introduce a method for estimating the variation of the overall heat loss coefficient and the domestic energy gain factor. Based on a neural network model, these parameters were extracted from analyzing the model by indirect methods. The used model parameters were: the supplied heating demand, the domestic electrical demand and the indoor-outdoor temperature difference. A feed-forward back propagation neural network was used as modeling tool. The proposed method has been found accurate, based on an analysis of artificially generated data. Additionally, measured data of inhabited single family buildings were examined and the model was found to generate reliable results, in parity with results obtained by comparable methods and estimations.
机译:在这项工作中,我们介绍了一种估算总体热损失系数和家庭能源获取因子变化的方法。基于神经网络模型,通过间接方法从模型分析中提取这些参数。使用的模型参数为:供热需求,家庭用电需求和室内外温度差。前馈反向传播神经网络被用作建模工具。基于对人工生成的数据的分析,发现该方法是准确的。此外,检查了居住的单户住宅建筑的测量数据,发现该模型可生成可靠的结果,与通过可比较的方法和估计获得的结果相当。

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