DEVELOPMENT OF TECHNOLOGY FOR MANUFACTURING METAL-COMPOSITE BODIES OF PREFABRICATED DRILLS IN THE CONDITIONS OF IMPORT SUBSTITUTION
Abstract and keywords
Abstract (English):
In the conditions of sanctions pressure and the need for import substitution, the task of reducing the cost of starting production of prefabricated drill bodiess is becoming particularly relevant. The paper objective is to reduce the cost of starting production of such a tool by introducing a new manufacturing technology. A comparative analysis of two production routes is carried out: a traditional subtractive method of mechanical processing and an innovative metal-composite method combining selective laser melting of a metal shell with subsequent vibro-vacuum filling of a metal polymer filler. It is shown that the combined metal-composite technology provides a number of design advantages that are unattainable with the classical approach, including the formation of conformal internal cooling channels and increased vibration resistance of the tool due to a damping polymer core. It is found out that the new technology significantly reduces initial costs in small-scale production of drill bodies, which confirms the expediency of its use in the conditions of import substitution.

Keywords:
drill, metal polymer, composite, import substitution, manufacturing route
References

1. Sandvik Coromant. Metal cutting technology: Drilling [Internet]. [cited 2025 Aug 09] Available from: https://www.sandvik.coromant.com/en-us/knowledge/drilling/drilling-tips?utm_source=chatgpt.com.

2. Tungaloy. DrillMeister Modular Drilling System. Official Brochure. Tungaloy Corporation [Internet]. 2021 [cited 2025 Aug 09] Available from: https://tungaloy.com/wpdata/wp-content/uploads/412-u_DrillMeister.pdf?utm_source=chatgpt.com.

3. The Rhythm of mechanical engineering. Russian market of metal-cutting tools [Internet]. [cited 2025 Aug 09] Available from: https://ritm-magazine.com/ru/public/rossiyskiy-rynok-metallorezhushchego-instrumenta?utm_source=chatgpt.com.

4. Kanbur BB, Zhou Y, Shen S, Wong KH, Chen C, Shocket A, Duan F. Metal additive manufacturing of plastic injection molds with conformal cooling channels. Polymers [Internet]. 2022;14:424. Available from: https://doi.org/10.3390/polym14030424.

5. Lubimyi NS, Chepchurov M, Polshin AA, Gerasimov MD, Chetverikov BS, Chetverikova A, Tikhonov AA, Maltsev A. Reducing the cost of 3D metal printing using selective laser melting (SLM) technology in the manufacture of a drill body by reinforcing thin-walled shell forms with metal-polymers. J. Manuf. Mater. Process [Internet]. 2024;8:44. Available from: https://doi.org/10.3390/jmmp8020044.

6. Lubimyi NS, Voronenko VP, Polshin AA, Gerasimov MD, Antsiferov S, Oğuz Kaan Öztürk, Chetverikov BS, Tikhonov AA, Ryazantsev VG, Shumyacher VM, Melentiev N. What is the economic feasibility of manufacturing a metal-metal- polymer composite part compared to other technologies? Australian Journ of Mechanical Engineering. 20(4):1-12. DOI:https://doi.org/10.1080/14484846.2022.209453.

7. EOS. Additive Manufacturing advantages in tooling [Internet]. [cited 2025 Aug 09] Available from: https://www.eos.info/content/blog/the-strategic-advantage-of-am-for-tooling.

8. Murčinková Z, Adamčík P, Sabol D. Dynamic response of components containing polymer composites in the resonance region for vibration amplitudes up to 5g. Polymers [Internet]. 2022;14(22):5051. Available from: https://doi.org/10.3390/polym14225051.

9. Glagolev SN, Moiseev VV. Problems of import substitution in Russia. Bulletin of BSTU named after V.G. Shukhov. 2016;1:204-208.

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