Impact of Bioinspired Infill Pattern on the Thermal and Energy Efficiency of 3D Concrete Printed Building Envelope (2025-09)¶
, , Mari Tamil
Journal Article - Architecture, Vol. 5, Iss. 3, No. 77
Abstract
The traditional construction industry significantly contributes to global resource consumption and climate change. Conventional methods limit the development of complex and multifunctional architectural forms. In contrast, 3D concrete printing (3DCP), an additive manufacturing technique, enables the creation of intricate building envelopes that integrate architectural and energy-efficient functions. Bioinspired design, recognized for its sustainability, has gained traction in this context. This study investigates the thermal and energy performance of various bioinspired and regular 3DCP infill patterns compared to conventional concrete building envelopes in tropical climates. A three-stage methodology was employed. First, bioinspired patterns were identified and evaluated through a literature review. Next, prototype models were developed using Rhino and simulated in ANSYS to assess thermal performance. Finally, energy performance was analyzed using Ladybug and Honeybee tools. The results revealed that honeycomb, spiral, spiderweb, and weaving patterns achieved 35–40% higher thermal and energy efficiency than solid concrete, and about 10% more than the 3DCP sawtooth pattern. The findings highlight the potential of bioinspired spiral infill patterns to enhance the sustainability of 3DCP building envelopes. This opens new avenues for integrating biomimicry into 3DCP construction as a tool for performance optimization and environmental impact reduction.
¶
8 References
- Alkhalidi Ammar, Hatuqay Dina (2020-02)
Energy Efficient 3D Printed Buildings:
Material and Techniques Selection Worldwide Study - Kaszyńska Maria, Skibicki Szymon, Hoffmann Marcin (2020-12)
3D Concrete Printing for Sustainable Construction - Mahadevan Meera, Francis Ann, Thomas Albert (2020-08)
A Simulation-Based Investigation of Sustainability Aspects of 3D Printed Structures - Marais Hannelie, Christen Heidi, Cho Seung, Villiers Wibke et al. (2021-03)
Computational Assessment of Thermal Performance of 3D Printed Concrete Wall Structures with Cavities - Sarakinioti Maria, Turrin Michela, Konstantinou Thaleia, Tenpierik Martin et al. (2018-03)
Developing an Integrated 3D Printed Façade with Complex Geometries for Active Temperature-Control - Suntharalingam Thadshajini, Upasiri Irindu, Gatheeshgar Perampalam, Poologanathan Keerthan et al. (2021-09)
Energy Performance of 3D Printed Concrete Walls:
A Numerical Study - Tamimi Adil, Hassan Habibelrahman, Rodriguez-Ubinas Edwin, Alhaidary Haidar et al. (2023-11)
Thermal Performance of 3D Concrete Printed Walls:
Calculated and In-Situ Measured U-Values - Zahrani Abdullah, Alghamdi Abdulrahman, Basalah Ahmad (2022-12)
Computational Optimization of 3D Printed Concrete Walls for Improved Building Thermal Performance
0 Citations
BibTeX
@article{arum_kusu_mari.2025.IoBIPotTaEEo3CPBE,
author = "Girirajan Arumugam and Camerlia May Li Kusumo and Tamil Salvi Mari",
title = "Impact of Bioinspired Infill Pattern on the Thermal and Energy Efficiency of 3D Concrete Printed Building Envelope",
doi = "10.3390/architecture5030077",
year = "2025",
journal = "Architecture",
volume = "5",
number = "3",
pages = "77",
}
Formatted Citation
G. Arumugam, C. M. L. Kusumo and T. S. Mari, “Impact of Bioinspired Infill Pattern on the Thermal and Energy Efficiency of 3D Concrete Printed Building Envelope”, Architecture, vol. 5, no. 3, p. 77, 2025, doi: 10.3390/architecture5030077.
Arumugam, Girirajan, Camerlia May Li Kusumo, and Tamil Salvi Mari. “Impact of Bioinspired Infill Pattern on the Thermal and Energy Efficiency of 3D Concrete Printed Building Envelope”. Architecture 5, no. 3 (2025): 77. https://doi.org/10.3390/architecture5030077.