Evaluation of the Behavior of Carbon-Short-Fiber-Reinforced Concrete (CSFRC) Based on a Multi-Sensory Experimental Investigation and a Numerical Multi-Scale Approach (2021-11)¶
Lauff Philipp, , , Weiss Ursula, , , ,
Journal Article - Materials, Vol. 14, Iss. 22
Abstract
Carbon fiber reinforcement used in concrete has become a remarkable alternative to steel fibers. Admixing short fibers to fresh concrete and processing the material with a 3D printer leads to an orientation of fibers and a material with high uniaxial strength properties, which offers an economic use of fibers. To investigate its mechanical behavior, the material is subjected to flexural and tensional tests, combining several measuring techniques. Numerical analysis complements this research. Computed tomography is used with several post-processing algorithms for separating matrix and fibers. This helps to validate fiber alignment and serves as input data for numerical analysis with representative volume elements concatenating real fiber position and orientation with the three-dimensional stress tensor. Flexural and uniaxial tensional tests are performed combining multiple measuring techniques. Next to conventional displacement and strain measuring methods, sound emission analysis, in terms of quantitative event analysis and amplitude appraisal, and also high-resolution digital image correlation accompany the tests. Due to the electrical conductibility of carbon fibers, the material's resistivity could be measured during testing. All sensors detect the material's degradation behavior comparably, showing a strain-hardening effect, which results from multiple, yet locally restricted and distributed, microcracks arising in combination with plastic deformation.
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4 References
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9 Citations
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Fiber Reinforcement Strategies in 3D Concrete Printing:
Addressing Challenges and Identifying Research Gaps - Luo Surong, Jin Wenhao, Wu Weihong, Zhang Kaijian (2024-11)
Rheological and Mechanical Properties of Polyformaldehyde-Fiber-Reinforced 3D Printed High-Strength Concrete with the Addition of Fly-Ash - Sousa Israel, Alessandro Antonella, Mesquita Esequiel, Laflamme Simon et al. (2024-11)
Comprehensive Review of 3D Printed Cementitious Composites with Carbon Inclusions:
Current Status and Perspective for Self-Sensing Capabilities - Warsi Syed, Panda Biranchi, Biswas Pankaj (2023-12)
Exploring Fiber Addition Methods and Mechanical Properties of Fiber-Reinforced 3D Printed Concrete:
A Review - Ungureanu Dragoș, Onuțu Cătălin, Țăranu Nicolae, Vornicu Nicoleta et al. (2023-11)
Microstructure and Mechanical Properties of Cost-Efficient 3D Printed Concrete Reinforced with Polypropylene Fibers - Engelhard Michael, Kalytta-Mewesand Andreas, Volkmer Dirk (2022-09)
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BibTeX
@article{lauf_puga_rutz_weis.2021.EotBoCSFRCCBoaMSEIaaNMSA,
author = "Philipp Lauff and Polina Pugacheva and Matthias Rutzen and Ursula Weiss and Oliver Fischer and Dirk Volkmer and Malte A. Peter and Christian U. Grosse",
title = "Evaluation of the Behavior of Carbon-Short-Fiber-Reinforced Concrete (CSFRC) Based on a Multi-Sensory Experimental Investigation and a Numerical Multi-Scale Approach",
doi = "10.3390/ma14227005",
year = "2021",
journal = "Materials",
volume = "14",
number = "22",
}
Formatted Citation
P. Lauff, “Evaluation of the Behavior of Carbon-Short-Fiber-Reinforced Concrete (CSFRC) Based on a Multi-Sensory Experimental Investigation and a Numerical Multi-Scale Approach”, Materials, vol. 14, no. 22, 2021, doi: 10.3390/ma14227005.
Lauff, Philipp, Polina Pugacheva, Matthias Rutzen, Ursula Weiss, Oliver Fischer, Dirk Volkmer, Malte A. Peter, and Christian U. Grosse. “Evaluation of the Behavior of Carbon-Short-Fiber-Reinforced Concrete (CSFRC) Based on a Multi-Sensory Experimental Investigation and a Numerical Multi-Scale Approach”. Materials 14, no. 22 (2021). https://doi.org/10.3390/ma14227005.