Numerical Simulation Study of Quasi-Static Loading and Dynamic Loading for Micro Bending Forming of Copper Foil

Article Preview

Abstract:

A variety of micro forming processes has been invented, and the size effects have become a research hotspot at home and abroad. Micro bending molds with different feature sizes were designed. Quasi-static tester loading and dynamic laser shock loading with soft punch for micro bending forming was studied by numerical simulation respectively based on ANSYS implicit analysis and LS-DYNA explicit analysis. The constitutive models of workpiece are bilinear kinematic hardening model and Johnson-cook model respectively. The effects of different loading conditions and feature sizes of the die on the forming depth, equivalent plastic strain and equivalent plastic strain rate were studied. The results of numerical simulation show that, with the increasing of feature size of the mold, the forming depth under two kinds of loading conditions shows a tendency to increase. In dynamic laser shock loading, the equivalent plastic strain and equivalent plastic strain rate of the key position of the bent part would decrease with the increasing of the feature size of the die. While in quasi-static loading, the opposite law is shown. The research shows that, the flexible micro-bending processes with different loading models showed similar size effect. However, compared with quasi-static loading, in dynamic loading, the strain of forming parts is more centralized, and there is a high strain rate and better formability of the workpiece.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

503-511

Citation:

Online since:

December 2016

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2017 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] L. F. Peng, P. Hu, X. M. Lai, D. Q. Mei, J. Ni, Investigation of micro/meso sheet soft punch stamping process–simulation and experiments, J. Mater. Des. 30(3) (2009) 783-790.

DOI: 10.1016/j.matdes.2008.05.074

Google Scholar

[2] S. S. Lim, Y. T. Kim, C. G. Kang, Fabrication of aluminum 1050 micro-channel proton exchange membrane fuel cell bipolar plate using rubber-pad-forming process, J. Int. J. Adv. Manuf. Technol. 65(1) (2012) 231-238.

DOI: 10.1007/s00170-012-4162-8

Google Scholar

[3] I. Irthiea, G. Green, S. Hashim, A. Kriama, Experimental and numerical investigation on micro deep drawing process of stainless steel 304 foil using flexible tools, J. Int. J. Mach. Tools Manuf. 76 (2014) 21-33.

DOI: 10.1016/j.ijmachtools.2013.09.006

Google Scholar

[4] X. Wang, T. B. Qiu, Z. B. Shen, D. Zhang, Y. J. Ma, Y. X. Gu, H. X. Liu, Forming properties of microscale laser dynamic flexible forming technique, J. Mater. Manuf. Process. 31(6) (2014) 745-750.

DOI: 10.1080/10426914.2014.994749

Google Scholar

[5] H. X. Liu, J. W. Li, Z. B. Shen, Q. Qian, H. F. Zhang, X. Wang, Experimental and numerical simulation research on micro-gears fabrication by laser shock punching process, J. Micromachines, 6(8) (2015) 969-983.

DOI: 10.3390/mi6080969

Google Scholar

[6] J. G. Liu, Z. J. Wang, H. Song, Research status of numerical simulation of sheet metal forming with flexible die, J. Mater. Sci. Process, 16 (2008) 430-434. (In Chinese).

Google Scholar

[7] R. Fabbro, J. Fournier, P. Ballard, D. Devaux, J. Virmont, Physical study of laser-produced plasma in confined geometry, J. Appl. Phys. 68 (1990) 775-784.

DOI: 10.1063/1.346783

Google Scholar

[8] X. Wang, D. Zhang, C. X. Gu, Z. B. Shen, H. X. Liu, Research on the micro sheet stamping process using plasticine as soft punch, J. Mater. 7 (2014) 4118-4131.

DOI: 10.3390/ma7064118

Google Scholar

[9] G. R. Johnson, W. H. Cook, A constitutive model and data for metals subjected to large strains, high strain rates and high temperatures, Proc. 7th Int. Symp. on Ballistics, The Hague, The Netherlands, April 1983, pp.541-547.

Google Scholar

[10] P. Bansal, P. H. Shipway, S. B. Leen, Effect of Particle Impact on Residual Stress Development in HVOF Sprayed Coatings, J. Therm. Spray Tech. 15(4) (2006) 570-575.

DOI: 10.1361/105996306x146703

Google Scholar

[11] M. H. Dirikolu, E. Akdemir, Computer aided modelling of flexible forming process, J. Mater. Process. Technol. 148(3) (2004) 376-381.

DOI: 10.1016/j.jmatprotec.2004.02.049

Google Scholar