Micro-Encapsulated Phase-Change-Material in 3D Printable Mortars (2024-10)¶
10.1016/j.enconman.2024.119106
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Journal Article - Energy Conversion and Management, Vol. 321, No. 119106
Abstract
The present study investigates the potential of replacing sand with microencapsulated phase change materials (MEPCM) in 3D-printable mortar to provide a promising way to improve thermal performance in 3D-printed buildings. Adding MEPCM significantly enhanced the rheological properties and early hardening evolution of cementitious mortar for 3D printing applications without the need for viscosity modifier agents. In hardened mortars, microstructural analysis and thermal cycling experiments confirmed that MEPCM remained intact and stable within the cementitious environment. The thermal properties of the treated mortars, including latent heat and thermal conductivity, were improved for energy-saving applications. Despite this, the compressive strength of the mortars dropped considerably by increasing the concentration of MEPCM while a strength of above 20 MPa was maintained. Simulation results from 3D Finite Element Method (FEM) and 1D reduced order model (ROM) closely matched the experimental data from printed walls in a thermal setup, validating the use of 1D ROM simulations for long-term predictions. In a case study, a printed wall where MEPCM replaced 80 % of the sand showed a ~40 % reduction in energy consumption compared to mortar without MEPCM under real weather conditions.
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6 References
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Incorporating PCM-Enabled Thermal Energy Storage into 3D Printable Cementitious Composites - Christen Heidi, Zijl Gideon, Villiers Wibke (2023-02)
Improving Building Thermal Comfort Through Passive Design:
An Experimental Analysis of Phase-Change-Material 3D Printed Concrete - Hao Lucen, Xiao Jianzhuang, Sun Jingting, Xia Bing et al. (2022-06)
Thermal Conductivity of 3D Printed Concrete With Recycled Fine Aggregate Composite Phase-Change-Materials - Rahemipoor Sahand, Hasany Masoud, Mehrali Mohammad, Almdal Kristoffer et al. (2023-07)
Phase-Change-Materials Incorporation into 3D Printed Geopolymer Cement:
A Sustainable Approach to Enhance the Comfort and Energy Efficiency of Buildings - Saruhan Vedat, Keskinateş Muhammer, Felekoğlu Burak (2022-04)
A Comprehensive Review on Fresh State Rheological Properties of Extrusion-Mortars Designed for 3D Printing Applications - Shahzad Qamar, Shen Junyi, Naseem Rabia, Yao Yonggang et al. (2021-10)
Influence of Phase-Change-Material on Concrete Behavior for Construction 3D Printing
2 Citations
- Ding Tao, Wei Jun, Sun Jingting, Feng Kaikai (2025-12)
Experimental Study on Thermal Properties of 3D Printed Concrete with Recycled Sand and Powder - Kachalov A., Sánchez P., Mollah Md., Ezquerro J. et al. (2025-07)
Numerical Analysis of Coaxially 3D Printed Lunar Habitats:
Integrating Regolith and PCM for Passive Temperature Control
BibTeX
@article{rahe_baya_hasa_mehr.2024.MEPCMi3PM,
author = "Sahand Rahemipoor and Mohammad Bayat and Masoud Hasany and Mohammad Mehrali and Kristoffer Almdal and Navid Ranjbar and Mehdi Mehrali",
title = "Micro-Encapsulated Phase-Change-Material in 3D Printable Mortars",
doi = "10.1016/j.enconman.2024.119106",
year = "2024",
journal = "Energy Conversion and Management",
volume = "321",
pages = "119106",
}
Formatted Citation
S. Rahemipoor, “Micro-Encapsulated Phase-Change-Material in 3D Printable Mortars”, Energy Conversion and Management, vol. 321, p. 119106, 2024, doi: 10.1016/j.enconman.2024.119106.
Rahemipoor, Sahand, Mohammad Bayat, Masoud Hasany, Mohammad Mehrali, Kristoffer Almdal, Navid Ranjbar, and Mehdi Mehrali. “Micro-Encapsulated Phase-Change-Material in 3D Printable Mortars”. Energy Conversion and Management 321 (2024): 119106. https://doi.org/10.1016/j.enconman.2024.119106.