Freeze-Thaw Durability of 3D Printed Concrete (2025-09)¶
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Journal Article - CivilEng, Vol. 6, Iss. 3, No. 47
Abstract
The growing application of 3D concrete printing (3DCP) in construction has raised important questions regarding its long-term durability under freeze–thaw (F–T) exposure, particularly in cold climates. This review paper presents a comprehensive examination of recent research focused on the F–T performance of 3D-printed concrete (3DPC). Key material and process parameters influencing durability, such as print orientation, admixtures, and layer bonding, are critically evaluated. Experimental findings from mechanical, microstructural, and imaging studies are discussed, highlighting anisotropic vulnerabilities and the potential of advanced additives like nanofillers and air-entraining agents. Notably, air-entraining agents (AEA) reduced the compressive strength loss by 1.4–5.3% after exposure to F–T cycles compared to control samples. Additionally, horizontally cored specimens with AEA incorporated into their mixture design showed a 15% higher dynamic modulus after up to 300 F–T cycles. Furthermore, optimized printing parameters, such as reduced nozzle standoff distance and minimized printing time gap, reduced surface scaling by over 50%. The addition of a nanofiller such as nano zinc oxide in 3DPC can result in compressive strength retention rates exceeding 95% even after aggressive F–T cycling. The lack of standard testing protocols and the geometry dependence of degradation are emphasized as key research gaps. This review provides insights into optimizing mix designs and printing strategies to improve the F–T resistance of 3DPC, aiming to support its reliable implementation in cold-region infrastructure.
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25 References
- Assaad Joseph, Hamzeh Farook, Hamad Bilal (2020-05)
Qualitative Assessment of Interfacial Bonding in 3D Printing Concrete Exposed to Frost-Attack - Azimi Zahir, Mousavi Moein, Bengar Habib, Javadi Akbar (2023-12)
Study on the Post-Fire Mechanical Properties of Lightweight 3D Printed Concrete Containing Expanded Perlite as Partial Replacement of Natural Sand - Baktheer Abedulgader, Claßen Martin (2024-07)
A Review of Recent Trends and Challenges in Numerical Modeling of the Anisotropic Behavior of Hardened 3D Printed Concrete - Baz Bilal, Nana W., Mothe Loïc, Florentin Jérôme et al. (2024-09)
Structural Behavior of 3D Printed Load Bearing Elements - Bradshaw James, Si Wen, Khan Mehran, McNally Ciaran (2025-07)
Emerging Insights into the Durability of 3D-Printed Concrete:
Recent Advances in Mix Design Parameters and Testing - Chandra Jimmy, Halim Alvin, Budiman Franky, Pudjisuryadi Pamuda et al. (2025-05)
Experimental Study of Bond Strength of Embedded Steel Reinforcement in Vibration-Based 3D Printed Concrete Mortar - Dong Wei, Wang Junfeng, Hang Meiyan, Qu Shuqiang (2024-01)
Research on Printing Parameters and Salt-Frost-Resistance of 3D Printing Concrete with Ferrochrome-Slag and Aeolian Sand - Farahbakhsh Mehdi, Rybkowski Zofia, Zakira Umme, Kalantar Negar et al. (2022-07)
Impact of Robotic 3D Printing Process Parameters on Inter-Layer Bond Strength - Givkashi Mohammad, Tohidloo Mohammad (2024-07)
The Effect of Freeze-Thaw-Cycles and Sulfuric-Acid-Attack Separately on the Compressive Strength and Microstructure of 3D Printed Air-Entrained Concrete - Huang Xin, Yang Weihao, Song Fangnian, Zou Jiuqun (2022-04)
Study on the Mechanical Properties of 3D Printing Concrete Layers and the Mechanism of Influence of Printing Parameters - Khan Mirza, Ahmed Aayzaz, Ali Tariq, Qureshi Muhammad et al. (2024-12)
Comprehensive Review of 3D Printed Concrete, Life Cycle Assessment, AI and ML Models:
Materials, Engineered Properties and Techniques for Additive Manufacturing - Kolawole John, Buswell Richard, Mahmood Sultan, Isa Muhammed et al. (2025-02)
On the Origins of Anisotropy of Extrusion-Based 3D Printed Concrete:
The Roles of Filament Skin and Agglomeration - Lee Yoon, Lee Sang, Kim Jae, Jeong Hoseong et al. (2024-07)
Inter-Layer Bond Strength of 3D Printed Concrete Members with Ultra-High-Performance Concrete Mix - Li Haodao, Addai-NImoh Alfred, Kreiger Eric, Khayat Kamal (2023-12)
Methodology to Design Eco-Friendly Fiber-Reinforced Concrete for 3D Printing - Liu Chao, Liu Huawei, Wu Yiwen, Wu Jian et al. (2025-02)
Effect of X-Ray CT Characterized Pore Structure on the Freeze-Thaw Resistance of 3D Printed Concrete with Recycled Coarse Aggregate - Mousavi Moein, Bengar Habib, Mousavi Fateme, Mahdavinia Pooneh et al. (2024-12)
Inter-Layer Bond Strength Prediction of 3D Printable Concrete Using Artificial Neural Network:
Experimental and Modeling Study - Muy Yeakleang, Courard Luc, Garnavault Xavier, Bulteel David et al. (2024-06)
Mechanical Properties and Freezing and Thawing Behavior of 3D Printing Concrete Containing Recycled Fine Aggregates from Construction and Demolition Waste - Panda Biranchi, Paul Suvash, Mohamed Nisar, Tay Yi et al. (2017-09)
Measurement of Tensile Bond Strength of 3D Printed Geopolymer Mortar - Sapata Alise, Šinka Māris, Šahmenko Genādijs, Korat Bensa Lidija et al. (2025-02)
Establishing Benchmark Properties for 3D-Printed Concrete:
A Study of Printability, Strength, and Durability - Tanyildizi Harun, Seloglu Maksut, Coskun Ahmet (2024-08)
The Effect of Nano-Zinc-Oxide on Freeze-Thaw-Resistance of 3D Printed Geopolymer Mortars - Tarhan Yeşim, Şahin Remzi (2024-12)
The Impact of Air-Entraining on Frost-Endurance in 3D Printed Concrete:
The Function of Printing Orientation and Curing Process - Wang Hao, Jiang Minghui, Hang Meiyan, Zhou Gangming et al. (2023-07)
Research on the Mechanical Properties and Frost-Resistance of Aeolian Sand 3D Printed Mortar - Wang Li, Xiao Wei, Wang Qiao, Jiang Hailong et al. (2022-07)
Freeze-Thaw-Resistance of 3D Printed Composites with Desert Sand - Wolfs Robert, Bos Freek, Salet Theo (2019-03)
Hardened Properties of 3D Printed Concrete:
The Influence of Process Parameters on Inter-Layer Adhesion - Zhu Ronghua, Egbe King-James, Salehi Hadi, Shi Zhongtian et al. (2024-01)
Eco-Friendly 3D Printed Concrete with Fine Aggregate Replacements:
Fabrication, Characterization and Machine Learning Prediction
BibTeX
@article{mous_rang.2025.FTDo3PC,
author = "Moein Mousavi and Prasad Rao Rangaraju",
title = "Freeze-Thaw Durability of 3D Printed Concrete: A Comprehensive Review of Mechanisms, Materials, and Testing Strategies",
doi = "10.3390/civileng6030047",
year = "2025",
journal = "CivilEng",
volume = "6",
number = "3",
pages = "47",
}
Formatted Citation
M. Mousavi and P. R. Rangaraju, “Freeze-Thaw Durability of 3D Printed Concrete: A Comprehensive Review of Mechanisms, Materials, and Testing Strategies”, CivilEng, vol. 6, no. 3, p. 47, 2025, doi: 10.3390/civileng6030047.
Mousavi, Moein, and Prasad Rao Rangaraju. “Freeze-Thaw Durability of 3D Printed Concrete: A Comprehensive Review of Mechanisms, Materials, and Testing Strategies”. CivilEng 6, no. 3 (2025): 47. https://doi.org/10.3390/civileng6030047.