均质化(气候)
多孔介质
工作(物理)
背景(考古学)
水分
多孔性
比例(比率)
计算
材料科学
传热
建筑材料
计算机科学
环境科学
机械
机械工程
复合材料
工程类
物理
地质学
算法
生物
生物多样性
古生物学
量子力学
生态学
作者
Rafik Belarbi,Farès Bennai,Mohammed Yacine Ferroukhi,Chady El Hachem,Kamilia Abahri
标识
DOI:10.1051/matecconf/201814902005
摘要
The aim of this work is to understand the influence of the microstructuralgeometric parameters of porous building materials on the mechanisms of coupled heat, air and moisture transfers, in order to predict behavior of the building to control and improve it in its durability. For this a multi-scale approach is implemented. It consists of mastering the dominant physical phenomena and their interactions on the microscopic scale. Followed by a dual-scale modelling, microscopic-macroscopic, of coupled heat, air and moisture transfers that takes into account the intrinsic properties and microstructural topology of the material using X-ray tomography combined with the correlation of 3D images were undertaken. In fact, the hygromorphicbehavior under hydric solicitations was considered. In this context, a model of coupled heat, air and moisture transfer in porous building materials was developed using the periodic homogenization technique. These informations were subsequently implemented in a dynamic computation simulation that model the hygrothermalbehaviourof material at the scale of the envelopes and indoor air quality of building. Results reveals that is essential to consider the local behaviors of materials, but also to be able to measure and quantify the evolution of its properties on a macroscopic scale from the youngest age of the material. In addition, comparisons between experimental and numerical temperature and relative humidity profilesin multilayers wall and in building envelopes were undertaken. Good agreements were observed.
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