Study on mechanical properties and toughening mechanism of shotcrete by polyformaldehyde fiber admixture
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1.College of Land and Resources Engineering, Kunming University of Science and Technology;2.College of Land and Resources Engineering, Kunming University of Science and Technology Yunnan International Technology Transfer Center for Mineral Resources Development and Solid Waste Resources Utilization Yunnan Province Innovation Center of Phosphorus Resource;3.昆明理工大学 国土资源工程学院 云南省磷资源技术创新中心 云南磷化集团有限公司 College of Land and Resources Engineering, Kunming University of Science and Technology Yunnan Province Innovation Center of Phosphorus Resource Yunnan Phosphate Group Co;4.Yunnan Province Innovation Center of Phosphorus Resource Yunnan Phosphate Group Co;5.College of Resource and Environmental Engineering, Jiangxi University of Science and Technology

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TU432; TD327???????

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    Abstract:

    Aiming at the current deep roadway support shotcrete there are mechanical properties of low, toughness deficiency poor and other problems, the effects of polyoxymethylene (POM) fiber admixture (0, 5, 7, 9 kg/m3) on the mechanical properties of roadway support shotcrete were analyzed by four-point bending test and SEM technology. The results show that POM fiber can significantly improve the mechanical properties of concrete, of which the flexural strength is most significantly increased (89.46%), compressive and splitting tensile strength are increased by 43.48% and 62.71%, respectively, and the toughness effect is the best when the dosage is 7 kg/m3. In the macro and fine mechanical properties, the residual flexural strength retention rate is more than 30%, which effectively inhibits the development of cracks and reduces porosity, while significantly attenuating the brittle damage characteristics of the material; in the micro scale, the fibers inhibit brittle damage through interfacial frictional energy dissipation and three-dimensional load transfer, and their surface stripe structure enhances the mechanical occlusion as well as the fibers have two forms of pullout and pull-off. The research results can provide theoretical and technical support for POM fiber in the field of tunnel support.

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History
  • Received:June 03,2025
  • Revised:June 18,2025
  • Adopted:August 02,2025
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