Skip to content

Material-Characteristics of 3D Printed Concrete Subjected to Highly Dynamic Loading (2023-05)

 Dijkers Hugo, Simon George,  Bos Freek,  Salet Theo,  Peroni Marco, Dodson T.
Contribution - Proceedings of the 6th International Conference on Protective Structures

Abstract

In this study the quasi-static, low- and high-dynamic compressive properties, and ballistic resistance of two types of 3D printed concrete have been investigated and compared to normal strength cast concrete (NSC). For the printed materials, an unreinforced commercially available mortar and a PVA fiber-reinforced strainhardening cementitious composite (SHCC) mixture were used. The compressive strength and its dynamic increase factor, strain at peak stress, elastic modulus, and energy absorption capacity have been determined. For the high-dynamic compressive tests, a Split Hopkinson Pressure Bar apparatus has been used. For all compressions tests cylindrical specimens cored out in three orientations from the printed and cast concrete have been used. At quasi-static strain rates, clear differences in compressive properties between the three materials were found. The behavior of the NSC and the unreinforced mortar was brittle and isotropic, while that of the SHCC was ductile. However, at dynamic strain rates, these differences disappeared and the failure mode of the SHCC became brittle too. This is likely caused by a change in failure mode from fiber pull-out to fiber breakage in the SHCC. The ballistic tests were performed with an armor-piercing projectile impacting rectangular specimens at 630 – 760 m/s, resulting in significantly different responses. Most importantly, the SHCC specimens stayed intact even after four closely spaced shots, while both the NSC and unreinforced mortar specimens fractured completely. It is suggested this is due to the high fracture toughness of SHCC. Thus, the experiments suggest that even though the materials show similar behavior under dynamic strain rates, the SHCC behavior differs under localized, highly dynamic loading.

18 References

  1. Bos Freek, Wolfs Robert, Ahmed Zeeshan, Salet Theo (2016-08)
    Additive Manufacturing of Concrete in Construction:
    Potentials and Challenges of 3D Concrete Printing
  2. Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
    3D Printing Using Concrete-Extrusion:
    A Roadmap for Research
  3. Feng Peng, Meng Xinmiao, Chen Jian-Fei, Ye Lieping (2015-06)
    Mechanical Properties of Structures 3D Printed with Cementitious Powders
  4. Figueiredo Stefan, Rodríguez Claudia, Ahmed Zeeshan, Bos Derk et al. (2020-05)
    Mechanical Behavior of Printed Strain-Hardening Cementitious Composites
  5. Jagoda Jeneé, Diggs-McGee Brandy, Kreiger Megan, Schuldt Steven (2020-04)
    The Viability and Simplicity of 3D Printed Construction:
    A Military Case Study
  6. Kruger Jacques, Zijl Gideon (2020-10)
    A Compendious Review on Lack-of-Fusion in Digital Concrete Fabrication
  7. Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
    Hardened Properties of High-Performance Printing Concrete
  8. Liu Junli, Li Shuai, Fox Kate, Tran Jonathan (2021-12)
    3D Concrete Printing of Bio-Inspired Bouligand Structure:
    A Study on Impact-Resistance
  9. Liu Chenkang, Yue Songlin, Zhou Cong, Sun Honglei et al. (2021-08)
    Anisotropic Mechanical Properties of Extrusion-Based 3D Printed Layered Concrete
  10. Mechtcherine Viktor, Tittelboom Kim, Kazemian Ali, Kreiger Eric et al. (2022-04)
    A Roadmap for Quality-Control of Hardening and Hardened Printed Concrete
  11. Mo Yixin, Xing Jianchun, Yue Songlin, Zhang Yamei et al. (2022-04)
    Dynamic Properties of 3D Printed Cement Mortar Based on Split Hopkinson Pressure Bar Testing
  12. Mo Yixin, Yue Songlin, Zhou Qizhen, Feng Bowei et al. (2021-09)
    Dynamic Properties and Fractal Characteristics of 3D Printed Cement Mortar in SHPB-Test
  13. Overmeir Anne, Figueiredo Stefan, Šavija Branko, Bos Freek et al. (2022-02)
    Design and Analyses of Printable Strain-Hardening Cementitious Composites with Optimized Particle-Size-Distribution
  14. Panda Biranchi, Paul Suvash, Tan Ming (2017-07)
    Anisotropic Mechanical Performance of 3D Printed Fiber-Reinforced Sustainable Construction-Material
  15. Shkundalova Olena, Molkens Tom, Claßen Martin, Rossi Barbara (2022-05)
    Computational Modelling of Material-Behavior of Layered 3D Printed Concrete
  16. Wolfs Robert, Bos Freek, Salet Theo (2019-03)
    Hardened Properties of 3D Printed Concrete:
    The Influence of Process Parameters on Inter-Layer Adhesion
  17. Yang Yekai, Wu Chengqing, Liu Zhongxian, Li Jun et al. (2022-02)
    Characteristics of 3D Printing Ultra-High-Performance Fiber-Reinforced Concrete Under Impact Loading
  18. Zhou Jiehang, Du Longyu, Lai Jianzhong, Wang Qiang et al. (2022-03)
    Preparation and High-Velocity Impact Experiment for Three-Dimensional-Printed Concrete

0 Citations

BibTeX
@inproceedings{dijk_simo_bos_sale.2023.MCo3PCStHDL,
  author            = "Hugo P.A. Dijkers and George H. D. Simon and Freek Paul Bos and Theo A. M. Salet and Marco Peroni and T. M. Dodson",
  title             = "Material-Characteristics of 3D Printed Concrete Subjected to Highly Dynamic Loading",
  year              = "2023",
  booktitle         = "Proceedings of the 6th International Conference on Protective Structures",
  editor            = "International Association of Protective Structures",
}
Formatted Citation

H. P. A. Dijkers, G. H. D. Simon, F. P. Bos, T. A. M. Salet, M. Peroni and T. M. Dodson, “Material-Characteristics of 3D Printed Concrete Subjected to Highly Dynamic Loading”, in Proceedings of the 6th International Conference on Protective Structures, 2023.

Dijkers, Hugo P.A., George H. D. Simon, Freek Paul Bos, Theo A. M. Salet, Marco Peroni, and T. M. Dodson. “Material-Characteristics of 3D Printed Concrete Subjected to Highly Dynamic Loading”. In Proceedings of the 6th International Conference on Protective Structures, edited by International Association of Protective Structures, 2023.