材料科学
复合数
灰浆
复合材料
砖
保温
有限元法
相对湿度
湿度
热导率
热的
热流密度
骨料(复合)
瓦片
岩土工程
热舒适性
传热
高效能源利用
阿布扎比
砌体饰面
多孔性
结构工程
计算机模拟
环境科学
内部加热
热能储存
作者
Hakim Bentrar,Houssem Hachemi,Chakib Seladji,M. Reda Haddouche,Abdel Illah Nabil Korti,Djahida Mahmoudi,Müslüm Arıcı,Houti Farid Brahim
标识
DOI:10.1016/j.est.2026.120717
摘要
In response to the growing demand for energy-efficient construction materials tailored to hot-arid climates, this study proposed and rigorously evaluated an innovative composite wall system that synergistically combined diatomite with paraffin. Eight wall assemblies were subjected to detailed numerical simulations, including five hollow brick walls with varied internal and external finishing layers and three concrete walls differentiated by aggregate composition. To ensure contextual relevance, the study incorporated real meteorological data from three representative desert locations: Ghardaïa (Algeria), Djerba Mellita (Tunisia), and Abu Dhabi (United Arab Emirates). In parallel, a dual-compartment experimental apparatus was developed to investigate the coupled thermal and hygric behavior of mortar and concrete composites under controlled environmental conditions. These experimental measurements provided critical physical insights and served to validate the finite element model, achieving deviations below 5% and thereby confirming the robustness of the numerical framework. The results demonstrated that the use of diatomite either alone or in combination with paraffins whether as finishing layers or as a partial replacement for sand and gravel in mortar and concrete mixtures significantly improved hygrothermal regulation. These systems effectively reduced internal heat flow and maintained temperature and humidity within comfort thresholds. Among all configurations, the brick wall with both internal and external finishes made from diatomite and 12% paraffin was identified as the most innovative and high-performing configuration, achieving up to a 40% reduction in heat flux while ensuring superior thermal insulation and humidity stability. • TA new wall design that combines diatomite and paraffin-based PCMs to enhance energy efficiency in hot-arid climates. • Eight wall configurations were tested using numerical simulations and validated with experimental data. • Walls incorporating diatomite and PCMs significantly reduced heat flow and stabilized indoor temperature and humidity levels. • The BDPCM wall configuration achieved the highest performance
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