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Numerical Analysis on Building Envelope Moisture Condensation: A Case Study Using the Glaser Diagram Method

机译:建筑包络水分凝结的数值分析 - 用Glaser图方法进行案例研究

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Requalification criteria with reference to existing buildings have to contemplate every aspect related to the performance of the external envelope. As for this, great attention has been posed to the modalities to increase the thermal performance of envelopes but practically no evidence has been dedicated to the study of condensation inside building elements. Several kinds of pathology may be caused by condensation, from the appearance of molds to the deterioration of the material itself. Ideally, the risk of condensation inside building elements should be identified before construction, during the design phase. Moreover, it is worth mentioning that both the above-mentioned factors are correlated: greater thermal insulation can lead to an increase in the risk of condensation and therefore it is necessary to work with reasoned choices on materials, thicknesses and position of the insulation. In this context, the present study is aimed at the analysis of the behaviour of moisture condensation with reference to a case study of a building exterior wall. Therefore, a numerical investigation has been carried out by means of a commercial code, based on finite element method, in accordance to the European Standard UNI EN ISO 13788. The Glaser method has been here employed, based on the steady-state diffusion theory and all the calculations were performed on a monthly basis, taking into account internal moisture production rates and outdoor climatic conditions. The results, with reference to the case study, present the occurrence of condensation during the winter months and the possibility that the moisture is completely removed during the warmer periods.
机译:请参考现有建筑物的保证标准必须考虑与外部信封的性能相关的各个方面。至于这,巨大的关注已经提出了模态,以提高信封的热性能,但实际上没有证据表明在建筑元素内部的凝结研究。几种病理学可能是由冷凝引起的,从模具的外观到材料本身的劣化。理想情况下,在设计阶段,应在施工之前识别建筑元件内部凝结的风险。此外,值得一提的是,上述因素都相关:更大的隔热可能导致冷凝风险的增加,因此有必要在绝缘材料,厚度和绝缘位置上使用所需的选择。在这种情况下,本研究旨在分析水分凝结的行为,参考建筑外墙的案例研究。因此,根据欧洲标准UNI EISO 13788,通过基于有限元方法的商业代码进行了数值调查。根据稳态扩散理论,Glaser方法已经采用了Glaser方法所有计算按月进行,考虑到内部水分生产率和室外气候条件。结果参考案例研究,呈现出冬季期间的凝结的发生,并且在暖期间在较温暖的时期完全去除水分的可能性。

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