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Rolling and other OMD processes
Название Method for calculating the optimal parameters for adjusting stamping equipment to ensure the geometric accuracy of heavy-duty vehicle crankshaft forgings
DOI 10.17580/chm.2022.08.07
Автор D. T. Safarov, A. V. Chekh, A. G. Kondrashev
Информация об авторе

Naberezhnye Chelny Institute (branch) of Kazan Federal University, Naberezhnye Chelny, Russia:
D. T. Safarov, Cand. Eng., Associate Prof., Dept. of Materials, Technologies and Quality, e-mail: Safarov-dt@mail.ru

A. G. Kondrashov, Cand. Eng., Associate Prof., Dept. of Design and Technological Support of Machine-Building Industries, e-mail: kondrashovag@mail.ru

 

KAMAZ PJSC, Naberezhnye Chelny, Russia.
A. V. Chekh, Director of the Forging Plant, e-mail: ChehAV@kamaz.ru

Реферат

The article presents an analysis of the allowance parameters on the processed elements of the workpieces, which ensure the efficiency and accuracy of the machining of machine parts workpieces. The best is the minimum allowable uniformly distributed allowance. The content of the methods for ensuring the allowance in the processes of machining workpieces of machine parts is considered. Existing methods, determining the distribution of the allowance according to the data of coordinate measurements, individually change the position of the mechanical base for processing the part. For crankshaft forgings, such an approach to providing the allowance parameters is impossible, since they are machined from a constant axis in the form of center holes. The article considers a method for calculating the optimal adjustment displacements of die equipment to ensure a minimum uniform allowance for the main and connecting rod journals of crankshaft forgings and favorable conditions for balancing the machined crankshaft forging. The values of the closed height of the stamp have been optimized, since this parameter is the main one, compensating for the change and cooling of the stamps during the stamping process, as well as the magnitude of the improvements in the engravings of the correction operation stamps. The results of applying the method to improve the geometric accuracy of heavy vehicle crankshaft f o rgings, which improves the distribution of the allowance from 1.3 to 2.5 times, depending on the results of measuring the original forging, are considered.

Ключевые слова Crankshaft forging, hot die forging, allowance parameters, optimal adjustment displacements of die equipment, main and connecting rod journals
Библиографический список

1. Gorbunov B. I. CAD. Calculation of allowances for machining the surfaces of parts and determining the dimensions of workpieces. Moscow: VNIINmash, 1984. 32 p.
2. Vasin А. N. Analytical review of modern methods for calculating allowances for machining workpieces. Saratov: Vestnik gosudarstvennogo tekhnicheskogo universiteta, 2005. No 2(7), pp. 16–26.
3. Ivannikov S. N., Shandov М. М. Influence of non-uniformity of the allowance of processed workpieces on the output parameters of technological equipment. Izvestiya MGTU «MAMI». 2011. No.2. pp. 130–134.
4. Starkov V. К. Cutting processing. Managing stability and quality in automated production. Moscow: Mashinostroenie, 1989. 296 p.
5. Malkova L. D. Influence of the allowance of forgings on the energy intensity of machining. Nauka i obrazovanie MGTU imeni N. E. Baumana. 2015. No. 10. pp. 65–73.
6. Adamenko V. М., Mrochek Zh. А. Energy efficiency of the process of cutting of workpieces surfaces based on the analysis of energy-consuming indicators of technological equipment. Nauka i tekhnika. 2012. No. 4. pp. 3–6.
7. Karpov А. V., Sokolik N. L., Sokolik А. I. On the issue of reducing energy consumption in the processing of workpieces with blade tools. Bryansk: Novye materialy i tekhnologii v mashinostroenii, 2003. pp. 48–51.
8. Mikhalov М. I., Nikitenko D. V., Kuzmich V. I. Calculation of the faceting value for whirl milling of cylindrical surfaces. Vestnik GGTU imeni P. О. Sukhogo. 2017. No. 4. pp. 3–9.
9. Jin Long Lu, Guo Guang Cheng, Meng Wu, Guo Yang, Ju Long Che. Detection and analysis of magnetic particle testing defects on heavy truck crankshaft manufactured by microalloyed medium carbon forging steel. Journal of Iron Steel Research International. 2020. No. 27. pp. 608–616.
10. Jiang B., Dong Z., Yang Z., Zhou L., Liu Y. et al. Analysis of the formation of surface crack on crankshaft after die forging. Transactions of the Indian Institute of Metals. 2015. Vol. 68. No. 4. pp. 553–559.
11. Remeseiro B., Tarr-Saavedra J., Francisco-Fernandez M., Penedo M. G., Naya S., Cao R. Automatic detection of defective crankshafts by image analysis and supervised classification. The International Journal of Advanced Manufacturing Technology. 2019. Vol. 105. pp. 3761–3777.
12. Alves L. M., Martins P. A. F. Flexible forming tool concept for producing crankshafts. Journal of Materials Processing Technology. 2011. Vol. 211. pp. 467–474.
13. Min Churl Song, VanTyne Ch. J., Jin Rae Cho, Young Hoon Moon. Optimization of Preform Design in Tadeusz Rut Forging of Heavy Crankshafts. Journal of Manufacturing Science and Engineering. 2017. Vol. 139. pp. 091014.
14. Noorbakhsh M., Moradi H. R. Design and optimization of multi stage manufacturing process of stirling engine crankshaft. SN Applied Sciences. 2020. No. 65.
15. Xingxing Wang, Zhenchao Qi, Kai Chen, Yong Liu, Erhua Wang. Study on the forming accuracy of the three-cylinder crankshaft using a specific die with a preformed dressing. The International Journal of Advanced Manufacturing Technology. 2019. Vol. 104. pp. 551–564.
16. Volodin I. М., Chekh А. V., Volodin А. I. Investigation of the forging shape change when trimming flash. Problems and prospects for the development of mechanical engineering. Collection of scientific papers of the international scientific and technical conference dedicated to the 60th anniversary of LSTU. 2016. pp. 330–335.
17. Martyugin А. V., Volodin I. М. Reducing the effect of deformation during flash trimming on the geometric accuracy and imbalance of crankshaft forgings. Colloquium-journal. 2019. No. 26. pp. 91–94.

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