Harnessing Natural Pozzolan for Sustainable Heating and Cooling: Thermal Performance and Building Efficiency in Moroccan Climates

Author:

Annaba Khadija1,Belarouf Sara2ORCID,El Wardi Fatima Zohra3,Ibaaz Khalid4,Cherkaoui Mouha4,Florence Céline1,Colin Johan1,Mege Romain1,Mendili Yassine El1ORCID

Affiliation:

1. Institute of Research, ESTP Graduate School of Engineering in Construction, 28 Avenue du Président Wilson, CEDEX, 94234 Cachan, France

2. Physics Unit, Department of Fundamental and Applied Sciences (DSFA), Agronomic and Veterinary Institute of Hassan II, Rabat 10000, Morocco

3. Physics Department, LPMAT Laboratory, Faculty of Sciences Ain Chock, Hassan II University, Casablanca 20000, Morocco

4. Applied Mathematics and Computer Science Decision Laboratory, National High School of Mines, Rabat 10000, Morocco

Abstract

The need to construct environmentally friendly buildings to meet current environmental and ecological standards is urgent. This study introduces a new multi-layer construction material with two outer layers of ordinary mortar and an inner layer of a pozzolane-limes composite to meet this need. The thermal efficiency of this material in building construction is investigated using TRNSYS18 simulations for two distinct climatic zones in Morocco, with a particular focus on its impact on heating dynamics. The primary objective is to evaluate the thermal performance of multi-layered pozzolanic materials, for which mortar samples are meticulously prepared as a reference in the two different climatic zones (Azilal and Errachidia). Using the asymmetric hot plate method under both stable and transient conditions, the authors conduct thermal characterization experiments. The results underscore the improvement in thermal performance made possible by the incorporation of pozzolan as an aggregate in the multi-layer material compared to ordinary mortar. Specifically, thermal conductivity improves significantly, from 0.735 W m−1 K−1 for ordinary mortar to 0.4 W m−1 K−1 for multi-layered pozzolanic materials, representing a 46% mass gain. Additionally, effusivity decreases from 730 to 604 J m−2 K−1 s−1/2, while diffusivity decreases from 3.78 to 2.23 × 10−7 m2 s−1, further attesting to the material’s thermal efficacy. TRNSYS18 simulations corroborate the viability of using multi-layered materials as building envelopes, revealing potential annual heating gains of 25% in Azilal and 5% in Errachidia. These findings underscore the promising prospects of integrating these materials into sustainable construction practices.

Funder

The results presented in this article were obtained in the framework of the Chair IdB

Publisher

MDPI AG

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