Utilizing 3D Printing and Distributed Optic Fiber to Achieve Temperature-Sensitive Concrete (2025-04)¶
Zhang Qiuju, Li Yujia, Huang Yuefan, , , Hu Yutao
Journal Article - Materials, Vol. 18, Iss. 9, No. 1897
Abstract
The distribution of temperature-induced cracks in mass concrete structures is extensive and random, making it difficult for existing detection methods to accurately identify the specific location and initiation time of cracking. Therefore, there is an urgent need for an intelligent, precise, and efficient monitoring approach capable of acquiring real-time information on the evolution of the internal temperature field in concrete structures during their early-age curing process. A novel temperature-sensitive concrete system was developed by synchronously integrating distributed optical fibers with three-dimensional printed concrete (3DPC) to enable both temperature monitoring and signal transmission. To validate the effectiveness of the proposed method, experimental testing and numerical simulations were conducted on cubic 3D-printed fiber-reinforced concrete to analyze the temporal evolution of their internal temperature fields. The results show that, during the system calibration process, the temperature measured by the distributed temperature sensing (DTS) system was highly consistent with the environmental temperature curve, with fluctuations controlled within ±1 °C. In addition, the numerical simulation results closely aligned with the experimental data, with discrepancies maintained within 5%, demonstrating the feasibility of utilizing 3D printing technology to impart temperature sensitivity to concrete materials. This integrated approach offers a promising pathway for advancing smart concrete technology, providing an effective solution for accurate sensing and control of internal temperatures in concrete structures. It holds substantial potential for practical applications in civil engineering projects.
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6 References
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A Review of 3D Printing in Construction and Its Impact on the Labor Market - Jipa Mihail-Andrei, Dillenburger Benjamin (2022-04)
3D Printed Formwork for Concrete:
State of the Art, Opportunities, Challenges, and Applications - Markin Slava, Combrinck Riaan, Mechtcherine Viktor (2024-07)
Specifics of Plastic Shrinkage in 3D Printed Concrete Elements - Zhang Hanghua, Hao Lucen, Zhang Shipeng, Xiao Jianzhuang et al. (2023-08)
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Development of 3D Printable Engineered Cementitious Composites with Ultra-High Tensile Ductility for Digital Construction
0 Citations
BibTeX
@article{zhan_li_huan_li.2025.U3PaDOFtATSC,
author = "Qiuju Zhang and Yujia Li and Yuefan Huang and Yangbo Li and Yahui Yang and Yutao Hu",
title = "Utilizing 3D Printing and Distributed Optic Fiber to Achieve Temperature-Sensitive Concrete",
doi = "10.3390/ma18091897",
year = "2025",
journal = "Materials",
volume = "18",
number = "9",
pages = "1897",
}
Formatted Citation
Q. Zhang, Y. Li, Y. Huang, Y. Li, Y. Yang and Y. Hu, “Utilizing 3D Printing and Distributed Optic Fiber to Achieve Temperature-Sensitive Concrete”, Materials, vol. 18, no. 9, p. 1897, 2025, doi: 10.3390/ma18091897.
Zhang, Qiuju, Yujia Li, Yuefan Huang, Yangbo Li, Yahui Yang, and Yutao Hu. “Utilizing 3D Printing and Distributed Optic Fiber to Achieve Temperature-Sensitive Concrete”. Materials 18, no. 9 (2025): 1897. https://doi.org/10.3390/ma18091897.