Dynamic splitting behavior of hybrid fiber-reinforced geopolymers with high strength and toughness

Geopolymers, recognized for their low-carbon and environmentally friendly characteristics, are increasingly regarded as sustainable construction materials and potential alternatives to traditional cement-based materials. Hybrid fiber-reinforced geopolymer composites (HFRGPC), developed through fiber hybridization techniques, can effectively overcome the inherent brittleness and cracking tendency of geopolymers, thereby exhibiting high strength and toughness under static loading. However, systematic studies on their dynamic behavior remain limited. In this study, the splitting tensile behavior of HFRGPC was investigated using the Split Hopkinson Pressure Bar (SHPB) technique under six levels of impact air pressures (range 0.08–0.18 MPa). The failure modes, dynamic stress-strain responses, dynamic increase factor (DIF), and energy absorption characteristics were analyzed. Results show that fiber pull-out and fracture effectively suppressed crack propagation and delayed instability, with failure dominated by radial crack growth from the specimen center. The splitting tensile performance of HFRGPC exhibited pronounced strain-rate sensitivity, with the DIF increasing from 1.27 to 2.36 as the strain rate rose. A logarithmic model based on DIF values was established and demonstrated good predictive capability for the dynamic splitting behavior of HFRGPC. Moreover, energy transfer and transformation significantly increased with strain rate, with the fracture energy consumption of specimens rising by up to 200.87%. These findings provide experimental evidence for the potential application of HFRGPC in protective structures under impact loading.

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Publication Details

Journal
Structures
Published
2026-09-12
DOI
https://doi.org/10.1016/j.istruc.2026.113040
Primary Topic
Innovative concrete reinforcement materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic splitting behavior of hybrid fiber-reinforced geopolymers with high strength and toughness

Haodong Shao, Xiangqian Fan, Tao Wang
Structures
Innovative concrete reinforcement materials
article

Dynamic splitting behavior of hybrid fiber-reinforced geopolymers with high strength and toughness

Haodong Shao, Xiangqian Fan, Tao Wang
article en

Abstract

Geopolymers, recognized for their low-carbon and environmentally friendly characteristics, are increasingly regarded as sustainable construction materials and potential alternatives to traditional cement-based materials. Hybrid fiber-reinforced geopolymer composites (HFRGPC), developed through fiber hybridization techniques, can effectively overcome the inherent brittleness and cracking tendency of geopolymers, thereby exhibiting high strength and toughness under static loading. However, systematic studies on their dynamic behavior remain limited. In this study, the splitting tensile behavior of HFRGPC was investigated using the Split Hopkinson Pressure Bar (SHPB) technique under six levels of impact air pressures (range 0.08–0.18 MPa). The failure modes, dynamic stress-strain responses, dynamic increase factor (DIF), and energy absorption characteristics were analyzed. Results show that fiber pull-out and fracture effectively suppressed crack propagation and delayed instability, with failure dominated by radial crack growth from the specimen center. The splitting tensile performance of HFRGPC exhibited pronounced strain-rate sensitivity, with the DIF increasing from 1.27 to 2.36 as the strain rate rose. A logarithmic model based on DIF values was established and demonstrated good predictive capability for the dynamic splitting behavior of HFRGPC. Moreover, energy transfer and transformation significantly increased with strain rate, with the fracture energy consumption of specimens rising by up to 200.87%. These findings provide experimental evidence for the potential application of HFRGPC in protective structures under impact loading.

StructuresVol. 93
Nanjing Hydraulic Research Institute (CN), Nanjing University of Aeronautics and Astronautics (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 16%
Innovative concrete reinforcement materials
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Dynamic splitting behavior of hybrid fiber-reinforced geopolymers with high strength and toughness — Haodong Shao, Xiangqian Fan, et al. · Structures (2026) | TGRS Research Map | TGRS