Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The progressive development of miniature systems increases the demand for miniature parts. Reducing the size of manufactured components on one hand is a serious challenge for traditional technologies, but on the other hand, mainly by removing the energy barrier opens the possibility of using other unconventional techniques. A good example is the ultrasonic excitation of the punch during the micro-upsetting process. The anti-barreling phenomenon and dependent on the amplitude of vibrations, intensive deformation of the surface layers in contact with the tools at both ends of the sample was noted. Based on the measured strains and stresses, an increase in temperature in the extreme layers to approx. 200°C was suggested. By adopting a simplified dynamic model of the test stand, the possibility of detaching the surface of the punch from the surface of the sample was demonstrated.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
423--431
Opis fizyczny
Bibliogr. 41 poz., fot., rys., tab., wzory
Twórcy
autor
- Warsaw University of Technology, Institute of Manufacturing Technologies, 85 Narbutta Str., 02-524, Warszawa, Poland
Bibliografia
- [1] Y. Saotome, H. Iwazaki, J. of Mat. Proc. Tech. 119 (1-3), 307-311 (2001).
- [2] M. Geiger, U. Engel, Prod. Eng. II, 15-18 (1994).
- [3] M. Jiang, G. Feng, Z. Yang, W. Zeng, Int. J. Adv. Manu. Technol. 82, 1363-1369 (2016).
- [4] M. Geiger, M. Kleiner, R. Eckstein, N. Tiesler, CIRP Annals - Manufac. Techn. 50 (2), 445-462 (2001).
- [5] A. Kocańda, W. Presz, G. Adamczyk, P. Czyżewski, J. of Mat.Proc. Tech. 60 (1-4), 23-30 (1996).
- [6] N. Tiesler, Wire 52 (1), 34-38 (2002).
- [7] U. Engel, Wear 260 (3), 265-273 (2006).
- [8] C. Wang, B. Guo, D. Shan, M. Zang, X. Bai, Int. J. Adv. Manuf. Technol. 71 (9-12), 2083-2090 (2014).
- [9] W. Presz, The Method of determining the tendency to gallingin vibration assisted microforming, in Metal, 27th Int. Conf. on Metallurgy and Materials 63, 450-456 (2018)
- [10] A. Muster, W. Presz, Scandinavian J. of Metallurgy 28 (1) 5-8 (1999).
- [11] T. Salacinski, T. Chmlelewski, M. Winiarski, Adv. in Mat. Science 18 (1) 20-27 (2018).
- [12] W. Presz, R. Cacko, Determination of material distribution in heading process of small bimetallic bar, in AIP Conf. Proc. 1960 (1), 050014 (2018).
- [13] E. Ghassemali, M. J. Chan, C. B. Wah, A. E. W. Jarfors, S. C. V. Lin, Mat. Science and Eng. 582, 379-388 (2013).
- [14] L. Olejnik, W. Presz, A. Rosochowski, Int. J. of Mat. Form. 2 (1), 617-620 (2009).
- [15] J. Q. Ran, M. W. Fu, W. L. Chan, Int. J. of Plasticity 41, 65-81 (2013).
- [16] W. Presz, B. Andersen, T. Wanheim, J. of Achiev. in Mat. and Manuf. Eng. 18 (1-2) 411-414 (2006).
- [17] E. Cannella, E. K. Nielsen, A. Stolfi, Micromachines 8 (7), 214-230 (2017).
- [18] N. A. Paldan, M. Arentoft, R. S. Eriksen, C. Mangeot, Int. J. Mater. Form, 1 (1), 467-470 (2008)
- [19] W. Presz, Com. Methods in Mat. Science 16, 196-203 (2016).
- [20] W. Presz, M. Rosochowski, Procedia Eng. 207, 1004-1009 (2017).
- [21] E. Ghassemali, A. E. Jarfors, M.-J. Tan, S.C.V. Lin, Int. J. of Mat. Form 6, 65-74 (2013).
- [22] T. Stellin, R. Tiium, U. Engel, Prod. Eng. 10, 103-112 (2016).
- [23] G. E. Nevill, F. R. Brotzen, ASTM Proc. 57, 751-758 (1957).
- [24] F. Blaha, B. Langenecker, Acta Metallurgica 7 (2), 93-100 (1959).
- [25] F. Djavanrood, H. Ahmadian, K. Koohkan, R. Naseri, Ultrasonics 53 (6), 1086-1096 (2013).
- [26] B. Christina, N. Gracious, Ultrasonics 51 (5), 606-616 (2011).
- [27] J.-C. Hung, C. Hung, Ultrasonics 43 (8), 692-698 (2005).
- [28] S. A. Aziz, M. Lucas, App. Mech. and Mat. 24-25, 311-316 (2010).
- [29] W. Presz, R. Cacko, Ultrasonic assisted microforming, in: Metal, 26th Int. Conf. on Metallurgy and Materials 521-526 (2017).
- [30] T. Shimizu, T. Kakegawa, M. Yang, Proc. Eng. 81, 1884-1889 (2014).
- [31] Y. Daud, M. Lucas, Z. Huang, Ultrasonics, 44 (sup.), 511-515 (2006).
- [32] H. Zhou, H. Cui, Q.-H. Qin, H. Wang, Mat. Science and Eng. 682, 376-388 (2017).
- [33] J. Hu, T. Shimizu, T. Yoshino, T. Shiratori, M. Yang, J. of Mat. Proc. Tech. 258, 144-154 (2018).
- [34] W. Presz, Dynamic effect in ultrasonic assisted micro-upsetting, in: AIP Conf. Proc. 1960 (1). 100012 (2018).
- [35] J. C. Hung, Y. C. Tsai, Mat. Scie. and Eng. 580, 125-132 (2013).
- [36] R. Raja, S. Lakhinaraihan, P. Murugesan, Int. J. of Modern Eng. Reserch 3 (6), 3852-3862 (2013).
- [37] Z. Yaoa, G.-Y. Kim, L. Fadley, Q. Zou, D. Mei, Z. Chen, J. of Mat. Proc. Tech. 212 (3), 640-646 (2012).
- [38] Y. Liu, S. Suslow, O. Han, L. Hua, X. Clause, Met. and Mat. Trans. 44, 3232-3244 (2013).
- [39] J. Hu, T. Shimizu, M. Yang, Ultr. Sonochem. 48, 240-248 (2018).
- [40] W. Presz, The Method of Micro-Upsetting in Uneven Temperature Distribution, in: METAL, 27th Int. Conf. on Metallurgy and Mat. 323-329 (2018).
- [41] Atlas of Stress-Strain Curves, Second Edition, Materials Park, OH 44073-0002.
Uwagi
EN
1. The work presented in this paper is financially supported by the National Science Centre - Poland (UMO-2011/01/B/ST8/07731).
PL
2. Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-90a5b920-a904-4fc5-8a67-726ec0f339d3