Research Article

Production of D2 and 17-4 PH Bimetallic Materials and Investigation of Their Mechanical Properties in Atomic Diffusion Additive Manufacturing Method

Volume: 13 Number: 2 June 30, 2025
TR EN

Production of D2 and 17-4 PH Bimetallic Materials and Investigation of Their Mechanical Properties in Atomic Diffusion Additive Manufacturing Method

Abstract

The study focused on the production of bimetallic material from 17-4 stainless steel and D2 tool steel using the Markforged brand Metal X device. In particular, despite the different physical and mechanical properties of the materials used, studies were carried out on the production of bimetal and the interfacial behavior thanks to the use of different filaments. The sample designed in cylindrical geometry was printed using layer-by-layer extrusion. Then, a debinding and sintering process was performed according to the ADAM (Atomic Diffusion Additive Manufacturing) methodology. In particular, the sample was passed through the production stages in a vertical position to ensure interface compatibility and prevent agglomeration. The produced sample's density, hardness, and microstructure properties were examined. According to the results, bimetal and hybrid material production can be carried out using the Metal X device.

Keywords

Supporting Institution

Gazi University

Project Number

FBG-2022-7860

Thanks

Gazi University BAP

References

  1. [1] Hull, C. W. (1984). Apparatus for production of three-dimensional objects by stereolithography. United States Patent, Appl., No. 638905, Filed.
  2. [2] Gibson, I., Rosen, D., Stucker, B., Khorasani, M., Rosen, D., Stucker, B., & Khorasani, M. (2021). Additive manufacturing technologies (Vol. 17, pp. 160-186). Cham, Switzerland: Springer.
  3. [3] Standard, A. S. T. M. (2012). Standard terminology for additive manufacturing technologies. ASTM International F2792-12a, 46, 10918-10928.
  4. [4] Guo, N., & Leu, M. C. (2013). Additive manufacturing: Technology, applications and research needs. Frontiers of Mechanical Engineering, 8(3), 215–243. https://doi.org/10.1007/s11465-013-0248-8
  5. [5] Ngo, T. D., Kashani, A., Imbalzano, G., Nguyen, K. T., & Hui, D. (2018). Additive manufacturing (3D printing): A review of materials, methods, applications and challenges. Composites Part B: Engineering, 143, 172–196. https://doi.org/10.1016/j.compositesb.2018.02.012
  6. [6] Markforged. (2023). Metal X system datasheet. Retrieved from https://markforged.com
  7. [7] DebRoy, T., Wei, H. L., Zuback, J. S., Mukherjee, T., Elmer, J. W., Milewski, J. O., ... & Zhang, W. (2018). Additive manufacturing of metallic components–process, structure and properties. Progress in materials science, 92, 112-224. https://doi.org/10.1016/j.pmatsci.2017.10.001
  8. [8] Liu, Y., Jiang, D., & Ning, F. (2025). Sintering Mechanisms in Metal Extrusion-based Sintering-assisted Additive Manufacturing: State-of-the-Art and Perspectives. Journal of Manufacturing Science and Engineering, 1-70.. https://doi.org/10.1115/1.4068066

Details

Primary Language

English

Subjects

Powder Metallurgy , Manufacturing Metallurgy

Journal Section

Research Article

Early Pub Date

May 22, 2025

Publication Date

June 30, 2025

Submission Date

March 21, 2025

Acceptance Date

May 2, 2025

Published in Issue

Year 2025 Volume: 13 Number: 2

APA
Taşcı, U. (2025). Production of D2 and 17-4 PH Bimetallic Materials and Investigation of Their Mechanical Properties in Atomic Diffusion Additive Manufacturing Method. Gazi Üniversitesi Fen Bilimleri Dergisi Part C: Tasarım Ve Teknoloji, 13(2), 488-498. https://doi.org/10.29109/gujsc.1662944

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