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Article

Polyformaldehyde Fiber Shotcrete Bending Fracture Test and Finite Element Simulation Research

1
Faculty of Land Resources Engineering, Kunming University of Science and Technology, Kunming 650093, China
2
Yunnan Mineral Resources Development and Utilization of Solid Waste Resources International Technology Transfer Center, Kunming 650093, China
3
Yunnan Phosphorus Resource Technology Innovation Center, Kunming 650600, China
4
Yunnan Phosphate Chemical Group Co., Ltd., Kunming 650600, China
5
China Nonferrous Metals Industry Kunming Survey, Design and Research Co., Ltd., Kunming 650600, China
6
Chongqing Yuntianhua Tianju New Material Co., Ltd., Chongqing 401221, China
*
Author to whom correspondence should be addressed.
Eng 2025, 6(11), 322; https://doi.org/10.3390/eng6110322
Submission received: 28 September 2025 / Revised: 31 October 2025 / Accepted: 4 November 2025 / Published: 11 November 2025

Abstract

As a support material for mine roadways, shotcrete (SC) exhibits performance limitations in extreme deep-mining environments characterized by high stress and water seepage. Polyoxymethylene (POM) fiber, with its properties of high strength, high modulus, and corrosion resistance, holds potential for application in surrounding rock support of deep roadways. To investigate the effect of POM fiber on the flexural performance of shotcrete, four-point bending tests were conducted on fiber-reinforced concrete specimens with different fiber lengths and dosages. Combined with ABAQUS numerical simulation, damage simulation analysis was performed on each group of specimens, and the stress propagation state of the fibers was tracked. The results show that the flexural strength of polyoxymethylene fiber shotcrete (PFS) increases with the increase in fiber length and dosage, and the influence of fiber dosage is more significant. POM fiber can effectively inhibit the crack development of shotcrete, enhancing its crack resistance and residual strength. The load-deflection curves indicate that PFS exhibits excellent fracture toughness, with the P9L42 group showing the highest flexural strength improvement, reaching an increase of 94%. The numerical simulation results are in good agreement with the experimental conditions, accurately reflecting the damage state and load-deflection response of each group of concrete specimens. Based on the above research, POM fiber is more conducive to meeting the stability requirements of roadway surrounding rock support, providing a scientific basis for the application of PFS in mine roadway surrounding rock support.
Keywords: polyoxymethylene fiber; sprayed concrete; four point flexure test; residual strength; numerical simulation polyoxymethylene fiber; sprayed concrete; four point flexure test; residual strength; numerical simulation

Share and Cite

MDPI and ACS Style

Zheng, Y.; Wang, G.; Zhao, B.; Wang, M.; Li, Y.; Li, S.; Yuan, M.; Wang, M.; Ma, Y. Polyformaldehyde Fiber Shotcrete Bending Fracture Test and Finite Element Simulation Research. Eng 2025, 6, 322. https://doi.org/10.3390/eng6110322

AMA Style

Zheng Y, Wang G, Zhao B, Wang M, Li Y, Li S, Yuan M, Wang M, Ma Y. Polyformaldehyde Fiber Shotcrete Bending Fracture Test and Finite Element Simulation Research. Eng. 2025; 6(11):322. https://doi.org/10.3390/eng6110322

Chicago/Turabian Style

Zheng, Yuelong, Guangjin Wang, Bing Zhao, Menglai Wang, Yanlin Li, Shujian Li, Mingli Yuan, Mingqiang Wang, and Yubo Ma. 2025. "Polyformaldehyde Fiber Shotcrete Bending Fracture Test and Finite Element Simulation Research" Eng 6, no. 11: 322. https://doi.org/10.3390/eng6110322

APA Style

Zheng, Y., Wang, G., Zhao, B., Wang, M., Li, Y., Li, S., Yuan, M., Wang, M., & Ma, Y. (2025). Polyformaldehyde Fiber Shotcrete Bending Fracture Test and Finite Element Simulation Research. Eng, 6(11), 322. https://doi.org/10.3390/eng6110322

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