Self-healing test of concrete mixed with permeable crystalline materials
DOI:
https://doi.org/10.63313/AERpc.9066Keywords:
Concrete, Crack repair, Self-healing, DurabilityAbstract
Concrete is a core component of infrastructure. Owing to its low tensile strength and exposure to complex service environments, it is prone to cracking, which seriously impairs the durability and safety of structures. Traditional repair techniques suffer from drawbacks such as high cost and low efficiency, while the self-healing technology of concrete slabs provides a new approach by simulating biological self-healing mechanisms to achieve autonomous crack repair.
References
[1] Wen, D.W. (2025) Research and Application of Construction Technology for Self-healing Dense Waterproof Concrete. Cement, 11, 152-155.
[2] Ye, H.W., Wang, B. & Tian, Z.X. (2018) Research and Prospect of Key Technologies for Integrated Construction of Prefabricated Concrete Buildings. Construction Technology, 47(06), 66-69.
[3] Ma, Q. (2021) Development Bottlenecks and Countermeasures of Prefabricated Buildings. Housing and Real Estate, 06, 37-38.
[4] Zheng, Z.T., Yang, H.D. & Tu, G.Y. (2019) Research on Causes and Control Technologies of Cracks in Prefabricated Concrete Components. Sichuan Building Materials, 45(08), 4-5.
[5] Qin, Z.H., Zhou, Z.G., Zhu, G.J. et al. (2023) Effect of Ultra-fine Composite Mineral Admixture of Fly Ash and Slag Powder on Concrete Durability. New Building Materials, 50(06), 66-69.
[6] Li, Y.H., Liu, L.X., Li, K. et al. (2023) Study on the Effect of Waterborne Permeable Crystalline Materials on Crack Repair Performance of Concrete. New Building Materials, 50(06), 142-146.
[7] Ye, Q., Zhang, Z.N., Chen, R.S., Ma, C.C. et al. (2003) Reaction between Nano-SiO₂ and Ca(OH)₂ in Hardened Cement Paste. Journal of the Chinese Ceramic Society, (05), 517-522.
[8] Xiang, F., Wang, Y.H., Lei, Z.L. et al. (2024) Study on the Effect of Self-healing, Crack-resistant and Anti-seepage Composite Materials on Concrete Properties. New Building Materials, 51(11), 113-116.
[9] Niu, Z.Q. (2023) Concrete Repair Technology in Construction Engineering. Stone Materials, (06), 75-77.
[10] Liu, W., Ding, H.Z., Shu, Y.B. et al. (2020) Research Progress on Self-healing/Self-repairing Concrete. Sichuan Building Materials, 46(07), 1-3.
[11] Hou, J.W. & Qin, Y.M. (2021) Effect of Fly Ash Content on the Compressive Strength of Fiber Reinforced Concrete. Adhesion, 46(04), 120-122.
[12] Su, J., Wang, J. & Tao, J.L. (2019) Experimental Study on Flexural Performance of Fly Ash Steel Fiber Ultra-High Strength Concrete. Building Technology Development, 46(22), 130-131.
[13] Khaloo, A., Raisi Elias, M., Payam, H. et al. (2014) Mechanical Performance of Self-compacting Concrete Reinforced with Steel Fibers. Construction and Building Materials, 51, 179-186.
[14] Zhang, H.M., Cao, L.N., Duan, Y.F. et al. (2024) High-flowable and High-performance Steel Fiber Reinforced Concrete Modified by Fly Ash and Silica Fume. Case Studies in Construction Materials, 20, 1-10.
[15] He, J.X., Xiao, R., Nie, Q.K. et al. (2024) Application of Coal Gasification Ash and Slag in Cement and Hydrated Lime. Journal of Tongji University (Natural Science Edition), 52(11), 1768-1775.
Downloads
Published
Issue
Section
License
Copyright (c) 2026 by author(s) and Erytis Publishing Limited.

This work is licensed under a Creative Commons Attribution 4.0 International License.








