Flexural Toughness of Extruded Fiber-Reinforced Mortar with Preferentially Aligned Fibers (2023-09)¶
10.1016/j.conbuildmat.2023.133528
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Journal Article - Construction and Building Materials, Vol. 407, No. 133528
Abstract
This study explored the flexural toughness properties of polyvinyl alcohol (PVA) fiber-reinforced concrete (FRC) using a modified ASTM C1609 third-point bending test, and it established a comparative study between two methods of casting: traditional casting and pump-driven extrusion. The primary hypothesis posited that the extrusion process would promote fiber alignment parallel to the tensile stresses, thereby enhancing the flexural performance of the concrete. The study corroborated previous research findings that introducing fibers enhances the ductility and post-peak performance of the concrete. Moreover, this research introduced a unique observation that strategic fiber alignment through extrusion could serve to further enhance the concrete's flexural performance. The research employed digital image correlation to capture the full displacement field during testing, facilitating an examination of the crack propagation process and strain localization. The findings showed that the extrusion-based casting method improved the residual strengths by an average of 39% and 87% compared to conventional cast method for the 0.5% and 1% fiber volume specimens, respectively. Additionally, the base of the extruded specimens exhibited a greater incidence of crack initiation and displayed enhanced energy absorption through multiple cracking events. These observations underscore the concept that fiber alignment, when facilitated by extrusion, plays a significant role in influencing crack propagation and, consequently, in improving the flexural properties of the composite material.
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7 References
- Alarrak Rashed, Jeon Byeonguk, Brand Alexander (2023-08)
Fracture Properties of Extruded Fiber-Reinforced Mortar with Preferentially Aligned Fibers - Ma Guowei, Li Zhijian, Wang Li, Wang Fang et al. (2019-01)
Mechanical Anisotropy of Aligned Fiber-Reinforced Composite for Extrusion-Based 3D Printing - Paul Suvash, Tay Yi, Panda Biranchi, Tan Ming (2017-08)
Fresh and Hardened Properties of 3D Printable Cementitious Materials for Building and Construction - Sun Xiaoyan, Zhou Jiawei, Wang Qun, Shi Jiangpeng et al. (2021-11)
PVA-Fiber-Reinforced High-Strength Cementitious Composite for 3D Printing:
Mechanical Properties and Durability - Takashima Hiroyuki, Miyagai Kiyotaka, Hashida Toshiyuki, Li Victor (2002-09)
A Design Approach for the Mechanical Properties of Polypropylene-Discontinuous-Fiber-Reinforced Cementitious Composites by Extrusion-Molding - Ye Junhong, Cui Can, Yu Jiangtao, Yu Kequan et al. (2021-02)
Effect of Polyethylene-Fiber Content on Workability and Mechanical-Anisotropic Properties of 3D Printed Ultra-High-Ductile Concrete - Zhang Yifan, Aslani Farhad (2021-08)
Development of Fiber-Reinforced Engineered Cementitious Composite Using Polyvinyl-Alcohol-Fiber and Activated Carbon-Powder for 3D Concrete Printing
3 Citations
- Srinivas Dodda, Panda Biranchi, Suraneni Prannoy, Sitharam Thallak (2025-06)
Mix Design Optimization of 3D-Printed Cementitious Composites for Marine Applications:
Impact of Binder Composition, Accelerated Carbonation, and PVA Fibers on Strength and Durability - Alarrak Rashed, Brand Alexander (2024-12)
Mechanical Performance of Extruded Functionally-Graded Fiber-Reinforced Mortar with Targeted Fiber-Injection - Duan Jiaqi, Sun Shouzheng, Chi Shengfeng, Hu Chunyou et al. (2024-06)
Effect of Process Parameters on Forming Quality and Flexural Strength of Continuous-Fiber-Reinforced Cement-Based 3D Printed Composites
BibTeX
@article{alar_jeon_bran.2023.FToEFRMwPAF,
author = "Rashed Alarrak and Byeonguk Jeon and Alexander S. Brand",
title = "Flexural Toughness of Extruded Fiber-Reinforced Mortar with Preferentially Aligned Fibers",
doi = "10.1016/j.conbuildmat.2023.133528",
year = "2023",
journal = "Construction and Building Materials",
volume = "407",
pages = "133528",
}
Formatted Citation
R. Alarrak, B. Jeon and A. S. Brand, “Flexural Toughness of Extruded Fiber-Reinforced Mortar with Preferentially Aligned Fibers”, Construction and Building Materials, vol. 407, p. 133528, 2023, doi: 10.1016/j.conbuildmat.2023.133528.
Alarrak, Rashed, Byeonguk Jeon, and Alexander S. Brand. “Flexural Toughness of Extruded Fiber-Reinforced Mortar with Preferentially Aligned Fibers”. Construction and Building Materials 407 (2023): 133528. https://doi.org/10.1016/j.conbuildmat.2023.133528.