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Powder-Bed-Based 3D Printing with Cement for Sustainable Casting (2022-12)

10.1016/j.jmrt.2022.12.102

Chun Seung-Yeop, Kim Su-jin, Kim Woon-Gi, Lee Geumyeon, Lee Myeung-jin, Ye Bora, Kim Hong-dae, Lee Jeong,  Kim Taewook
Journal Article - Journal of Materials Research and Technology, Vol. 22, pp. 3192-3206

Abstract

3D printing allows for the cost-effective fabrication of moulds and can cast complex shapes. In this study, alumina cement and fine aggregates for refractories were used as the main raw materials, and saturation was adjusted to an appropriate level to control the cement binder mixture for sand casting. For cast iron, the mould must withstand temperatures of up to 1400 C and must exhibit sufficient strength, gas permeability, and thermochemical durability at high temperatures. To accomplish these requirements, 3D printing powder was prepared by adjusting the ratio of fine aggregate (D50: 30 mm) and an even finer cement component (D50: 4 mm). To improve the moulding quality, a green body was used to optimise the cement admixtures to increase the strength, and the saturation level of the 3D printer was adjusted for dimensional accuracy. The high-temperature durability of the mould was evaluated by measuring its strength after heat treatment, using Simultaneous Thermal Analysis (TG-DSC), and through dimensional stability assessment. In addition, the pores of the specimens were analysed through microscale Xray tomography. The surface resolution and tolerance of the final casting were determined by a 3D image roughness test using a surface roughness scanner. The cement exhibited the shortest curing time and the highest strength when the mass ratio of CA (CaO\(Al2O3)to C12A7 (12CaO\)7Al2O3) was 8:2. The final mixing mass ratio of cement to the fine aggregate was 8:2, which was determined based on the relationship between flowability and powder bed surface quality. The results proved the high-temperature thermal stability of the 3Dprinted mould, which showed a total mass reduction of less than 3% and a low coefficient of linear expansion up to 1300 C. Consequently, the suitability of the 3D-printed moulded body, composed of casting sand with cement as a binder, for casting at temperatures >1400 C was demonstrated. Additionally, the final printed porous mould de-powdered easily, and its recyclability was verified by strength testing various mass ratios of fresh and recycled powder. Therefore, through optimisation of the material combinations and adjustment of the 3D printing process parameters, optimal gas permeability and moulding resolution could be achieved without any casting defect, while maintaining handling strength. The findings of this study demonstrate the potential of expanding the scope of powder-bed-based 3D printing of cement material to the casting market.

14 References

  1. Assaad Joseph, Hamzeh Farook, Hamad Bilal (2020-05)
    Qualitative Assessment of Interfacial Bonding in 3D Printing Concrete Exposed to Frost-Attack
  2. Che Yujun, Yang Huashan (2022-10)
    Hydration Products, Pore-Structure, and Compressive Strength of Extrusion-Based 3D Printed Cement-Pastes Containing Nano-Calcium-Carbonate
  3. Feng Peng, Meng Xinmiao, Chen Jian-Fei, Ye Lieping (2015-06)
    Mechanical Properties of Structures 3D Printed with Cementitious Powders
  4. Gibbons Gregory, Williams Reuben, Purnell Phil, Farahi Elham (2013-07)
    3D Printing of Cement Composites
  5. Ingaglio Joseph, Fox John, Naito Clay, Bocchini Paolo (2019-02)
    Material-Characteristics of Binder-Jet 3D Printed Hydrated CSA Cement with the Addition of Fine Aggregates
  6. Liu Bing, Liu Xiaoyan, Li Guangtao, Geng Songyuan et al. (2022-09)
    Study on Anisotropy of 3D Printing PVA-Fiber-Reinforced Concrete Using Destructive and Non-Destructive Testing Methods
  7. Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
    Particle-Bed 3D Printing in Concrete Construction:
    Possibilities and Challenges
  8. Lowke Dirk, Talke Daniel, Mai (née Dressler) Inka, Weger Daniel et al. (2020-05)
    Particle-Bed 3D Printing by Selective Cement-Activation:
    Applications, Material and Process Technology
  9. Napolitano Rosanna, Forni Daniele, Menna Costantino, Asprone Domenico et al. (2021-11)
    Dynamic Characterization of the Layer-Interface Properties of 3D Printed Concrete Elements
  10. Paul Suvash, Tay Yi, Panda Biranchi, Tan Ming (2017-08)
    Fresh and Hardened Properties of 3D Printable Cementitious Materials for Building and Construction
  11. Pierre Alexandre, Weger Daniel, Perrot Arnaud, Lowke Dirk (2018-01)
    Penetration of Cement-Pastes into Sand-Packings During 3D Printing:
    Analytical and Experimental Study
  12. Shakor Pshtiwan, Nejadi Shami, Paul Gavin, Sanjayan Jay (2019-12)
    Dimensional Accuracy, Flowability, Wettability, and Porosity in Inkjet 3DP for Gypsum and Cement Mortar Materials
  13. Shakor Pshtiwan, Sanjayan Jay, Nazari Ali, Nejadi Shami (2017-02)
    Modified 3D Printed Powder to Cement-Based Material and Mechanical Properties of Cement Scaffold Used in 3D Printing
  14. Suntharalingam Thadshajini, Gatheeshgar Perampalam, Upasiri Irindu, Poologanathan Keerthan et al. (2021-06)
    Fire Performance of Innovative 3D Printed Concrete Composite Wall Panels:
    A Numerical Study

6 Citations

  1. Nadi Mouad, Majdoubi Hicham, Haddaji Younesse, Bili Oumaima et al. (2025-01)
    Digital Fabrication Processes for Cementitious Materials Using Three-Dimensional 3D Printing Technologies
  2. Hassan Amer, Alomayri Thamer, Noaman Mohammed, Zhang Chunwei (2025-01)
    3D Printed Concrete for Sustainable Construction:
    A Review of Mechanical Properties and Environmental Impact
  3. Goidea Ana, Popescu Mariana, Johansson Anton, Andreén David (2024-07)
    Algorithmic Modeling of Functionally Graded Metamaterials in 3D Printed Building Envelopes
  4. Liu Xiongfei, Zhao Xi, Wang Nan, Zhang Yi et al. (2024-05)
    Powder-Based 3D Printed Magnesium Phosphate Cement:
    Mechanical Isotropy Optimization Using Borax
  5. Tiwari Adarsh, Pratapa Phanisri, Santhanam Manu (2024-03)
    Lattice Concrete:
    3D Printed Periodic Cellular Structures Through Selective Cement-Hydration
  6. Shilar Fatheali, Ganachari Sharanabasava, Patil Veerabhadragouda, Bhojaraja B. et al. (2023-08)
    A Review of 3D Printing of Geopolymer Composites for Structural and Functional Applications

BibTeX
@article{chun_kim_kim_lee.2023.PBB3PwCfSC,
  author            = "Seung-Yeop Chun and Su-jin Kim and Woon-Gi Kim and Geumyeon Lee and Myeung-jin Lee and Bora Ye and Hong-dae Kim and Jeong Hun Lee and Taewook Kim",
  title             = "Powder-Bed-Based 3D Printing with Cement for Sustainable Casting",
  doi               = "10.1016/j.jmrt.2022.12.102",
  year              = "2023",
  journal           = "Journal of Materials Research and Technology",
  volume            = "22",
  pages             = "3192--3206",
}
Formatted Citation

S.-Y. Chun, “Powder-Bed-Based 3D Printing with Cement for Sustainable Casting”, Journal of Materials Research and Technology, vol. 22, pp. 3192–3206, 2023, doi: 10.1016/j.jmrt.2022.12.102.

Chun, Seung-Yeop, Su-jin Kim, Woon-Gi Kim, Geumyeon Lee, Myeung-jin Lee, Bora Ye, Hong-dae Kim, Jeong Hun Lee, and Taewook Kim. “Powder-Bed-Based 3D Printing with Cement for Sustainable Casting”. Journal of Materials Research and Technology 22 (2023): 3192–3206. https://doi.org/10.1016/j.jmrt.2022.12.102.