Improving Building Thermal Comfort Through Passive Design (2023-02)¶
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Journal Article - Journal of Cleaner Production
Abstract
As the effects of climate change are felt around the world, it is important to consider more sustainable practices in every industry to reduce greenhouse gas emissions and preserve resources. Sustainable practices in the building sector and construction industry include incorporating passive design solutions into the building design and constructing with recycled materials. In this research the main passive design solution considered is thermal energy storage by latent heat capacity of phase change materials (PCMs). Construction with bricks is widely used in the developing world, allowing much potential for the use of recycled brick aggregate in construction composites. This research is the first of its kind on PCM inclusion by aggregate impregnation of recycled brick aggregate in 3D printed concrete (3DPC). Two cavity façade sections are 3D printed using two concrete mix designs - the first, in which 64% of the natural aggregate in the mix is replaced with recycled brick aggregate, and the second, adjusted from the first by an addition of PCM to the pores of the recycled brick aggregate by vacuum impregnation, creating concrete with a total average latent heat capacity of 7360 J/kg. These façade sections are used in four sets of thermal tests in Stellenbosch, South Africa. It is concluded that by latent heat storage, PCM delays heat transfer through the PCM-3DPC passive design façade section, significantly increasing the time that internal ambient temperatures remain within standardised ranges of thermal comfort, and reducing the maximum internal ambient temperatures by up to 3.9 ◦C. Minimal leakage of PCM is proven by effectiveness of the PCM in the PCM-3DPC façade section after five months of exposure to outdoor ambient spring and summer conditions.
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5 References
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13 Citations
- Álvarez Luisa, Fernandez Brian, Saldarriaga Federico, Romero Héctor et al. (2025-11)
Development and Bioclimatic Evaluation of Parametrically Designed Geometries for 3D-Printed Concrete Walls - Qiao Zhigang, Li Hui, Wang Fei, Qi Yongle et al. (2025-04)
Optimizing Thermal Energy Storage in 3D Printed Concrete with Hollow Ceramsite Composite Phase Change Materials - Zhang Ziqi, Pan Tinghong, Guoa Rongxin, Lin Runsheng et al. (2025-04)
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A Comprehensive Assessment of Thermal Performance of 3D Printed Concrete Lattice Walls - Venugopal Reddy P., Nakkeeran G., Roy Dipankar, Alaneme George (2024-11)
Evaluating the Use of Recycled Fine Aggregates in 3D Printing:
A Systematic Review - Rahemipoor Sahand, Bayat Mohammad, Hasany Masoud, Mehrali Mohammad et al. (2024-10)
Micro-Encapsulated Phase-Change-Material in 3D Printable Mortars - Jipa Mihail-Andrei, Lydon Gearóid, Yoo Angela, Chousou Georgia et al. (2024-08)
HiRes:
3D Printed Formwork for an Integrated Slab - Moghayedi Alireza, Mahachi Jeffrey, Lediga Refilwe, Mosiea Tshepang et al. (2024-03)
Revolutionizing Affordable Housing in Africa:
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A Review on Raw Materials, Concrete Types and Performances - Sedghi Reza, Rashidi Kourosh, Hojati Maryam (2024-01)
Large-Scale 3D Wall Printing:
From Concept to Reality - Dey Dhrutiman, Nguyen Vuong, Nguyen-Xuan Hung, Srinivas Dodda et al. (2023-12)
Flexural Performance of 3D Printed Concrete Structure with Lattice-Infills - Moelich Migael, Zijl Gideon, Villiers Wibke (2023-09)
Thermal Performance of Cavities in 3DPC Building Façades - Christen Heidi, Zijl Gideon, Villiers Wibke, Moelich Migael (2023-09)
Validated Simulation of Thermal Performance of Phase-Change-Material-Infused Recycled Brick-Aggregate in 3D Printed Concrete
BibTeX
@article{chri_zijl_vill.2023.IBTCTPD,
author = "Heidi Christen and Gideon Pieter Adriaan Greeff van Zijl and Wibke de Villiers",
title = "Improving Building Thermal Comfort Through Passive Design: An Experimental Analysis of Phase-Change-Material 3D Printed Concrete",
doi = "10.1016/j.jclepro.2023.136247",
year = "2023",
journal = "Journal of Cleaner Production",
}
Formatted Citation
H. Christen, G. P. A. G. van Zijl and W. de Villiers, “Improving Building Thermal Comfort Through Passive Design: An Experimental Analysis of Phase-Change-Material 3D Printed Concrete”, Journal of Cleaner Production, 2023, doi: 10.1016/j.jclepro.2023.136247.
Christen, Heidi, Gideon Pieter Adriaan Greeff van Zijl, and Wibke de Villiers. “Improving Building Thermal Comfort Through Passive Design: An Experimental Analysis of Phase-Change-Material 3D Printed Concrete”. Journal of Cleaner Production, 2023. https://doi.org/10.1016/j.jclepro.2023.136247.