Preliminary Optimization of Steady-State and Dynamic Thermal Performance of 3D Printed Foamed Concrete (2026-02)¶
Iozzino Fabio, , ,
Journal Article - Thermo, Vol. 6, Iss. 1, No. 13
Abstract
The integration of Foamed Concrete (FC) into 3D Concrete Printing (3DCP) processes facilitates the design of energy-efficient building envelopes. However, strategies for optimizing material porosity and printing topology to balance winter and summer performance remain underexplored. This study presents a 2D numerical thermal analysis of an innovative 3D-printed building envelope block characterized by sinusoidal internal partitions. Through a parametric variation in porosity (ranging from 10% to 50%) and internal geometry (amplitude and period of the partitions), 45 distinct configurations were simulated. Performance was evaluated by calculating the steady-state thermal transmittance (U) and the periodic thermal transmittance (Yie) under dynamic climatic conditions. The results demonstrate that porosity is the governing parameter; increasing porosity from 10% to 50% reduces U by 31% and, contrary to traditional assumptions for massive structures, also improves Yie by 12.3%. These outcomes are physically driven by the drastic reduction in thermal conductivity, which overcompensates for the loss of thermal mass, leading to a net reduction in overall thermal diffusivity. While internal topology plays a secondary role, its optimization allows for fine-tuning dynamic damping without compromising insulation. The study confirms that 3D printing with foamed concrete enables the overcoming of the traditional trade-off between insulation and thermal inertia. High-porosity configurations (50%) with optimized internal topology emerge as the most effective solution, simultaneously guaranteeing beneficial steady-state and dynamic thermal performance for sustainable buildings.
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4 References
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The Realities of Additively Manufactured Concrete Structures in Practice - Markin Slava, Krause Martin, Otto Jens, Schröfl Christof et al. (2021-06)
3D Printing with Foam-Concrete:
From Material Design and Testing to Application and Sustainability - Pessoa Ana Sofia, Guimarães Ana, Lucas Sandra, Simões Nuno (2021-02)
3D Printing in the Construction Industry:
A Systematic Review of the Thermal Performance in Buildings - Rudziewicz Magdalena, Hutyra Adam, Maroszek Marcin, Korniejenko Kinga et al. (2025-04)
3D-Printed Lightweight Foamed Concrete with Dispersed Reinforcement
0 Citations
BibTeX
@article{iozz_frag_maur_rose.2026.POoSSaDTPo3PFC,
author = "Fabio Iozzino and Andrea Fragnito and Gerardo Maria Mauro and Carlo Roselli",
title = "Preliminary Optimization of Steady-State and Dynamic Thermal Performance of 3D Printed Foamed Concrete",
doi = "10.3390/thermo6010013",
year = "2026",
journal = "Thermo",
volume = "6",
number = "1",
pages = "13",
}
Formatted Citation
F. Iozzino, A. Fragnito, G. M. Mauro and C. Roselli, “Preliminary Optimization of Steady-State and Dynamic Thermal Performance of 3D Printed Foamed Concrete”, Thermo, vol. 6, no. 1, p. 13, 2026, doi: 10.3390/thermo6010013.
Iozzino, Fabio, Andrea Fragnito, Gerardo Maria Mauro, and Carlo Roselli. “Preliminary Optimization of Steady-State and Dynamic Thermal Performance of 3D Printed Foamed Concrete”. Thermo 6, no. 1 (2026): 13. https://doi.org/10.3390/thermo6010013.