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Article

Towards Sustainable Construction: Evaluating Thermal Conductivity in Advanced Foam Concrete Mixtures

by
Alireza Mohtadi
1,2,
Mohammad Ghomeishi
3,* and
Ali Dehghanbanadaki
4,5
1
Department of Architecture, Gheshm Branch, Islamic Azad University, Gheshm 79515-1393, Iran
2
Research and Development, Materials and Technology, Institute of Iran Concrete Clinic, Tehran 14738-63451, Iran
3
Department of Architecture, Damavand Branch, Islamic Azad University, Tehran 39718-78911, Iran
4
Department of Civil Engineering, Damavand Branch, Islamic Azad University, Damavand 39718-78911, Iran
5
Research Center of Concrete and Soil, Damavand Branch, Islamic Azad University, Damavand 39718-78911, Iran
*
Author to whom correspondence should be addressed.
Buildings 2024, 14(11), 3636; https://doi.org/10.3390/buildings14113636
Submission received: 19 October 2024 / Revised: 7 November 2024 / Accepted: 9 November 2024 / Published: 15 November 2024
(This article belongs to the Section Building Energy, Physics, Environment, and Systems)

Abstract

Traditional concrete structures are frequently linked to poor energy efficiency and substantial heat loss, which pose significant environmental issues. To enhance thermal insulation and reduce heat loss, the use of precast insulated walls is suggested. This research introduces a new energy-efficient precast concrete panel (PCP). We explored various material combinations, including air bubbles, nano microsilica compound (NMC), nano microsilica powder (NMP), and latex, to determine the most effective formulation. A total of 99 tests were performed to assess the compressive strength of the samples, with 28 tests selected for thermal conductivity evaluations at temperatures of 300 °C and 400 °C based on satisfactory compressive strength results. The results indicated that the optimal mix of 4% air bubbles and 13% NMC achieved the lowest thermal conductivities of 1.31 W/m·K and 1.20 W/m·K at 300 °C and 400 °C, respectively, showing improvement ratios of 7% and 15.5% compared to the baseline tests. Additionally, the tests that included latex did not meet the thermal conductivity standards. The optimal combinations identified in this research can be effectively utilized in PCPs, resulting in significant energy savings. It is expected that stakeholders in the green building sector will recognize these proposed PCPs as a practical energy-efficient solution to advance sustainable and environmentally friendly construction practices.
Keywords: precast concrete panels; thermal insulation; energy efficiency precast concrete panels; thermal insulation; energy efficiency

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MDPI and ACS Style

Mohtadi, A.; Ghomeishi, M.; Dehghanbanadaki, A. Towards Sustainable Construction: Evaluating Thermal Conductivity in Advanced Foam Concrete Mixtures. Buildings 2024, 14, 3636. https://doi.org/10.3390/buildings14113636

AMA Style

Mohtadi A, Ghomeishi M, Dehghanbanadaki A. Towards Sustainable Construction: Evaluating Thermal Conductivity in Advanced Foam Concrete Mixtures. Buildings. 2024; 14(11):3636. https://doi.org/10.3390/buildings14113636

Chicago/Turabian Style

Mohtadi, Alireza, Mohammad Ghomeishi, and Ali Dehghanbanadaki. 2024. "Towards Sustainable Construction: Evaluating Thermal Conductivity in Advanced Foam Concrete Mixtures" Buildings 14, no. 11: 3636. https://doi.org/10.3390/buildings14113636

APA Style

Mohtadi, A., Ghomeishi, M., & Dehghanbanadaki, A. (2024). Towards Sustainable Construction: Evaluating Thermal Conductivity in Advanced Foam Concrete Mixtures. Buildings, 14(11), 3636. https://doi.org/10.3390/buildings14113636

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