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Investigation on heat and moisture transfer in bio-based building wall with consideration of the hysteresis effect

机译:考虑滞后效应的生物基建筑墙体传热和水分传递研究

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Two mathematical models describing heat and moisture transfer in porous media were used to predict the hygrothermal behavior of a new type of bio-based materials made of date palm concrete (DPC). The finite element method was used for the resolution of partial differential equations and numerical results were compared to experimental data considering similar conditions of temperature and relative humidity through the DPC wall. At first, a mesh sensitivity analysis was carried out and the optimum mesh configuration was determined. Afterwards, the hysteresis effect was implemented in the models and its influence on the variation of the relative humidity through the wall was discussed. The results revealed that the proposed models globally provided satisfactory results for the DPC wall, with an improved accuracy when considering the hysteresis effect. Finally, a comparison in terms of thermal insulation and moisture buffering capacity between DPC and a classical building material was performed numerically. Results showed that the new bio-based wall is very promising and can contribute to mitigate temperature variation and ensure hydrothermal comfort in buildings.
机译:使用两个描述多孔介质中水分和水分传递的数学模型来预测由椰枣混凝土(DPC)制成的新型生物基材料的湿热行为。考虑了通过DPC壁的相似温度和相对湿度条件,使用有限元方法解析了偏微分方程,并将数值结果与实验数据进行了比较。首先,进行网格敏感性分析并确定最佳网格配置。然后,在模型中实现了滞后效应,并讨论了其对通过壁的相对湿度变化的影响。结果表明,所提出的模型为DPC墙提供了令人满意的结果,并考虑了滞后效应,从而提高了精度。最后,对DPC和传统建筑材料之间的隔热和防潮能力进行了数值比较。结果表明,新的生物基墙非常有前途,可有助于减轻温度变化并确保建筑物的水热舒适性。

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