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2024 | OriginalPaper | Chapter

Automated Preform Design for the Development of Multi-stage Hot Forging Technology

Authors : Nikolay Biba, Sergey Stebunov, Andrey Vlasov, Kuanysh Kenzhaliyev, Alexey Duzhev

Published in: Proceedings of the 14th International Conference on the Technology of Plasticity - Current Trends in the Technology of Plasticity

Publisher: Springer Nature Switzerland

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Abstract

Producing complex forging parts requires multiple operations depending on the initial billet shape, the desired final forging shape, and the material’s deformability. The intermediate preforming impressions are used to achieve a complete finish die fill with minimal flash and reduced forming load while avoiding flow defects such as laps and flow-through. Practically effective preform design should also minimise the die wear by reducing metal sliding over the tool surface during impressions. In this paper we present a practical implementation of the approach to developing a preform shape that involves a potential flow approximation and utilising equipotential surfaces as a preliminary guess. This study continues the author’s previous work [1], which has been expanded to a broader range of product shapes. To make this approach applicable in the industry, a specialised CAD program was developed and tested in real production conditions that have proven its efficiency.

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Literature
1.
go back to reference Biba, N., Vlasov, A., Krivenko, D., Duzhev, A., Stebunov, S.: Closed die forging preform shape design using isothermal surfaces method. In: 23rd International Conference on Material Forming (ESAFORM 2020) (2020) Biba, N., Vlasov, A., Krivenko, D., Duzhev, A., Stebunov, S.: Closed die forging preform shape design using isothermal surfaces method. In: 23rd International Conference on Material Forming (ESAFORM 2020) (2020)
2.
go back to reference Lee, S.R., et al.: A new method of preform design in hot forging by using electric field theory. Int. J. Mech. Sci. 44(4), 773–792 (2002)CrossRef Lee, S.R., et al.: A new method of preform design in hot forging by using electric field theory. Int. J. Mech. Sci. 44(4), 773–792 (2002)CrossRef
3.
go back to reference Cai, J., Li, F., Liu, T.: A new approach of preform design based on 3D electrostatic field simulation and geometric transformation. Int. J. Adv. Manuf. Technol. 56(5–8), 579–588 (2011)CrossRef Cai, J., Li, F., Liu, T.: A new approach of preform design based on 3D electrostatic field simulation and geometric transformation. Int. J. Adv. Manuf. Technol. 56(5–8), 579–588 (2011)CrossRef
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go back to reference Feynman, R.P., Leighton, R.B., Sands, M.L.: The Feynman Lectures on Physics, vol. II. Addison-Wesley Pub. Co (1963) Feynman, R.P., Leighton, R.B., Sands, M.L.: The Feynman Lectures on Physics, vol. II. Addison-Wesley Pub. Co (1963)
6.
go back to reference Vlasov, A., Stebunov, S., Yevsukov, S., et al.: Finite-element simulation of open-and closed die forging technology, p. 321. Publishing of Moscow State Technical University, Moscow (2019). (in Russian) ISBN 978-5-7038-5101-2 Vlasov, A., Stebunov, S., Yevsukov, S., et al.: Finite-element simulation of open-and closed die forging technology, p. 321. Publishing of Moscow State Technical University, Moscow (2019). (in Russian) ISBN 978-5-7038-5101-2
Metadata
Title
Automated Preform Design for the Development of Multi-stage Hot Forging Technology
Authors
Nikolay Biba
Sergey Stebunov
Andrey Vlasov
Kuanysh Kenzhaliyev
Alexey Duzhev
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-41023-9_10

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