Superimposed Oscillating and Non-Oscillating Ring Compression Tests for Sheet-Bulk Metal Forming Technology

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The new manufacturing technology sheet-bulk metal forming (SBMF) combines the sheet metal forming and bulk metal forming techniques. At the Institute of Forming Technology and Machines (IFUM), a new multistage SBMF process is being developed. In order to reduce the friction and improve the dimensional accuracy of the parts, superimposed oscillation is used within the new SBMF process. SBMF processes allow the manufacturing of solid metal components out of flat steel. To analyse the effect of friction on the superimposed oscillating SBMF process more precisely, superimposed oscillating and non-oscillating ring compression tests at room temperature were carried out. Like the semi-finished products for SBMF process the ring specimens were cut out of a sheet plate by water jet cutting. A new tool system with an integrated hydraulic oscillation system was developed for superimposed oscillating compression of the ring specimens. This tool system enables the absorption of the forming force and displacement stroke of the ring specimen during the ring compression test. After the practical experiments, the force profiles of superimposed oscillating and of non-oscillating process were compared. The influence of the frequency on the surface roughness of ring specimens was investigated. Furthermore, the tribological conditions of the superimposed oscillating ring compression test were analyzed.

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October 2015

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[1] M. Merklein, J.M. Allwood, B. -A. Behrens, A. Brosius, H. Hagenah, K. Kuzman, K. Mori, A. E. Tekkaya, A. Weckenmann, , 2012, Bulk forming of sheet metal, CIRP Annals - Manufacturing Technology, 59/2, http: /dx. doi. org/10. 1016/j. bbr. 2011. 03. 031.

DOI: 10.1016/j.cirp.2012.05.007

Google Scholar

[2] V. Salfeld, R. Krimm, S. Hübner, M. Vucetic, Sheet-Bulk Metal Forming of Symmetric and Asymmetric Parts, Advanced Material Research Vol. 769, 2013, pp.229-236.

DOI: 10.4028/www.scientific.net/amr.769.229

Google Scholar

[3] B. -A. Behrens, S. Hübner, M. Vucetic, S. Koch, B. Denkena, T. Grove, H. Lucas, W. Tillmann, D. Stangier, T. Hausotte, A. Loderer, Prozessauslegung und Untersuchung von geschliffenen und CrAlN / CrAlCN-beschichteten Werkzeugoberflächen mittels schwingungsüberlagertem Flachstauchversuch für die Blechmassivumformung, Tagungsband zum 18. Workshop Simulation in der Umformtechnik & 3. Industriekolloquium Blechmassivumformung 2015 - DFG Transregio 73, Aachen: Shaker Verlag, 2015, ISBN 978-3-8440-3434-9, pp.173-192.

Google Scholar

[4] B. -A. Behrens, K. Voges-Schwieger, A. Bouguecha, J. Mielke, M. Vucetic, Material Characterization for Sheet-Bulk Metal Forming, Key Engineering Materials Vols. 504-506, 2012, pp.1029-1034.

DOI: 10.4028/www.scientific.net/kem.504-506.1029

Google Scholar

[5] B. -A. Behrens, S. Hübner, R. Krimm, C. Wager, M. Vucetic, T. Development of a Hydraulic Actuator to Superimpose Oscillation in Metal-Forming Presses, 14th International Conference on Sheet Metal, 18. -20. April 2011, pp.217-222.

DOI: 10.4028/www.scientific.net/kem.473.217

Google Scholar

[6] F. K. Garskii, V. I. Efromov, Effect of ultrasound on the decomposition of solid solutions, Izvestia Akademii Nauk, 1953 (3), Belorousk SSR, Russian.

Google Scholar

[7] K. M. Olsen, R. F. Jack, E. O. Fuchs, Wire drawing in ultrasonically agitated lubricants, Wire W. Prod. 40, 1965, p.1563, 1566-1568, 1637-1638.

Google Scholar

[8] E. Doege, C. Frank, G. Kurz, Schwingende Niederhalterkraft verbessert die Tiefziehergebnisse, MM-Maschinenmarkt, 106 (2000) 20, pp.28-30, 33-34.

Google Scholar

[9] D. Weiser, P. Müller, Umformen mit Schwingungsüberlagerung, in. H. Hoffmann, R. Neugebauer, G. Spur, Handbuch Umformen, Carl Hanser Verlag, München, 2012, pp.649-651.

DOI: 10.3139/9783446430044.fm

Google Scholar

[10] P. Groche, J. Stahlmann, J. Hartel, M. Köhle, Hydrodynamic effects of macroscopic deterministic surface structures in cold forging processes. Tribology International 42, 2009, pp.1173-1179.

DOI: 10.1016/j.triboint.2009.03.019

Google Scholar

[11] U. Vierzigmann , T. Schneider, J. Koch , O. Groebel, M. Merklein, U. Engel, R. Hense, D. Biermann, E. Krebs, P. Kersting, H. Lucas, B. Denkena, J. Herper, D. Stangier, W. Tillmann4, Untersuchung von Tailored Surfaces für die Blechmassivumformung mittels angepasstem Ringstauchversuch, Tagungsband zum 2. Workshop Blechmassivumformung 2013 – DFG Transregio 73, Meisenbach Bamberg, 2013, pp.137-162.

Google Scholar

[12] B. Avitzur, Forging of hollow disks, Israel Journal of Technology, Vol. 2, Nr. 3, 1964, pp.295-304.

Google Scholar

[13] K. Lange, Umformtechnik, Band 1+2, 2. Auflage, Berlin, Springer – Verlag, (1990).

Google Scholar

[14] A. T. Male, M. G Gockcroft, A method for the determination of the coefficient of friction of metals under conditions of bulk plastic deformation, J. Inst. Met. 93 (1964/65), pp.38-46.

Google Scholar

[15] B. -A. Behrens, S. Hübner, M. Vucetic, Influence of superimposed oscillation on sheet-bulk metal forming, 2013, Key Engineering Materials, Vol. 554-557, pp.1484-1489.

DOI: 10.4028/www.scientific.net/kem.554-557.1484

Google Scholar

[16] B. H. Lee, Y. T. Keum, R.H. Wagoner, Modeling of friction caused by lubrication and surface roughness in sheet metal forming, Journal of Material Processing Technology, 2002, Vols. 130–131, pp.60-63.

DOI: 10.1016/s0924-0136(02)00784-7

Google Scholar