Development and hygrothermal performance analysis of a novel eco-friendly insulating wall under various climatic conditions

被引:7
作者
Sawadogo, M. [1 ,2 ]
Benmahiddine, F. [3 ]
Godin, A. [1 ,2 ]
Duquesne, M.
Belarbi, R. [1 ,4 ]
Hamami, A. [1 ]
机构
[1] La Rochelle Univ, LaSIE, UMR 7356, CNRS, Ave Michel Crepeau, F-17042 La Rochelle 1, France
[2] La Rochelle Univ, Lab 4ev, EDF R&D, CNRS,LaSIE, Ave Michel Crepeau, F-17042 La Rochelle 1, France
[3] ComUE NU, Builders Ecole Ingenieurs, Builders Lab, 1 rue Pierre & Marie Curie, F-146110 Epron, France
[4] Canadian Univ Dubai, Dubai, U Arab Emirates
关键词
Phase change materials; Shape stabilization; Eco-friendly insulators; Thermal inertia and hygrothermal modelling; PHASE-CHANGE MATERIALS; THERMAL-ENERGY; BUILDINGS; STORAGE; PCM;
D O I
10.1016/j.buildenv.2023.110841
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This work proposes the development, characterization and modelling of new eco-friendly building walls integrating stabilized forms of phase change materials. The aim is to enhance the hygrothermal and energy performances of buildings by improving their management of thermal energy throughout the year and meeting users' thermal comfort requirements. These are essential axes to help decarbonize heating and cooling, to rehabilitate buildings and to contribute to the energy transition. The experimental and numerical hygrothermal performances of two different building walls are assessed and compared under realistic weather conditions. The maximum temperature inside the wall is reduced by 2 degrees C for the phase change material hemp concrete compared to the reference hemp concrete in a context of typical summer heatwaves day. Both phase change material hemp concrete and reference hemp concrete showed good moisture regulation capability by dampening cyclic variations in outdoor humidity. The developed numerical model exhibited a good agreement with the experimental results with a maximum root mean square error between experimental and numerical results of about 0.6 degrees C and 6% for temperature and relative humidity, respectively.
引用
收藏
页数:21
相关论文
共 52 条
  • [11] Benmahiddine F., 2020, phd thesis
  • [12] Effect of flax shives content and size on the hygrothermal and mechanical properties of flax concrete
    Benmahiddine, Ferhat
    Cherif, Rachid
    Bennai, Fares
    Belarbi, Rafik
    Tahakourt, Abdelkader
    Abahri, Kamilia
    [J]. CONSTRUCTION AND BUILDING MATERIALS, 2020, 262
  • [13] Benmahiddine F, 2020, J BUILD ENG, V32, DOI [10.1016/j.jobc.2020.101758, 10.1016/j.jobe.2020.101758]
  • [14] Investigation and properties of a novel composite bio-PCM to reduce summer energy consumptions in buildings of hot and dry climates
    Boussaba, Lisa
    Lefebvre, Gilles
    Makhlouf, Said
    Grados, Arnaud
    Royon, Laurent
    [J]. SOLAR ENERGY, 2021, 214 : 119 - 130
  • [15] Porous materials hysteretic moisture characteristics: Influence on water content distributions in buildings walls. Comparison of two simulation models.
    Crausse, P
    Laurent, JP
    Perrin, B
    [J]. REVUE GENERALE DE THERMIQUE, 1996, 35 (410): : 95 - 106
  • [16] Mechanical and thermal characterizations of various thermal energy storage concretes including low-cost bio-sourced PCM
    Dehmous, M'hand
    Franquet, Erwin
    Lamrous, Nacer
    [J]. ENERGY AND BUILDINGS, 2021, 241
  • [17] Biosourced organic materials for latent heat storage: An economic and eco-friendly alternative
    Duquesne, M.
    Mailhe, C.
    Ruiz-Onofre, K.
    Achchaq, F.
    [J]. ENERGY, 2019, 188
  • [18] Characterization of Fatty Acids as Biobased Organic Materials for Latent Heat Storage
    Duquesne, Marie
    Mailhe, Clement
    Doppiu, Stefania
    Dauvergne, Jean-Luc
    Santos-Moreno, Sergio
    Godin, Alexandre
    Fleury, Guillaume
    Rouault, Fabien
    del Barrio, Elena Palomo
    [J]. MATERIALS, 2021, 14 (16)
  • [19] European Standard, 1997, ISO 12572
  • [20] Hygrothermal behavior modeling of the hygroscopic envelopes of buildings: A dynamic co-simulation approach
    Ferroukhi, Mohammed Yacine
    Djedjig, Rabah
    Limam, Karim
    Belarbi, Rafik
    [J]. BUILDING SIMULATION, 2016, 9 (05) : 501 - 512