Investigation of Springback Angle in Single Point Incremental Forming Process on Explosive Welded Cu/St/Cu Multilaye
الموضوعات :Mohammad Honarpisheh 1 , Mohammad Reza Ebrahimi 2 , Hadi Mansouri 3
1 - Faculty of Mechanical Engineering, University of Kashan, Kashan, Iran
2 - Faculty of Engineering, Jasb branch, Islamic Azad University
3 - Faculty of Mechanical Engineering, University of Kashan, Kashan, Iran
الکلمات المفتاحية: Optimization, Spring Back, Taguchi Method, Incremental Sheet Forming,
ملخص المقالة :
Nowadays, the role of light weight materials has grown up in important industries such as aerospace and biomechanics, but before the appliance, their strength should be increased. A modern way to increase this factor along with the lightweight factoris using bimetal sheets, hence, the design of multilayer sheets has been very much considered recently. In this study, explosive welded Cu/St/Cu multilayer sheets were used in the incremental forming process to determine the springback phenomenon on different layers. The results indicated that rotational speed, feeding rate, and vertical step parameters can affect spring back in single point incremental forming process (SPIF).Three levels of vertical step size, tool rotational speed, and feed rate have been considered as the input process parameters and spring back as the output.In order to design a better experiment and analyze the data, the Taguchi method was selected on the basis of DOEin Mini-Tab software andthe results have been analyzed by two states. In the first state,the value which was closest to the nominal value is considered to be the optimal result which obtained for spring back angles with parameters of 0.75 mm for the vertical step down, 200 rpm for the rotational speed and 500 and 1000 mm/min for the feeding rate. In the second state, the least amount is considered as the optimal result in which the values of 0.5 and 1 mm of the vertical step down, 150 and 100 rpm of the rotational speed, and 1500 and 500 mm/min of the feeding rate formed the optimal outcome.
[1] Kapinski, S. 1996. Analytical and Experimental Analysis of Deep Drawing Process for Bimetal Elements. Journal of Materials Processing Technology. 60: 197–200.
[2] Iseki, H., Kato, K. and Sakamoto, S. 1993. Forming Limit of Flexible and Incremental Sheet Metal Bulging with a Spherical Roller. Proceedings of the Fourth International Conference on Technology of Plasticity. Advanced Technology of Plasticity.
[3] Kim, Y.H. and Park, J.J. 2002. Effect of Process Parameters on Formability in Incremental Forming of Sheet Metal. Journal of Materials Processing Technology. 130–131: 42–46.
[4] Contorno, D., Filice, L., Fratini, L. and Micari, F. 2006. Forming of Aluminum Foam Sandwich Panels: Numerical Simulations and Experimental Tests. Journal of Materials Processing Technology. 177(1–3): 364–367.
[5] Jackson, K.P., Allwood, J.M. and Landert. M. 2008. Incremental Forming of Sandwich Panels. Journal of Materials Processing Technology. 204(1-3): 290–303.
[6] Zenkert, D., 1995. An Introduction to Sandwich Construction. The Chameleon Press Ltd., London, United Kingdom.
[7] Zemin, F.u., Jianhua, M.o., Pan, G. , Wenxian, Z. , Zhongwei, L. and Kui, H. 2009. Mould Correction for Sheet-metal Multi-step Incremental Air-bending Forming based on Close-loop Control and FEM Simulation. International Journal of Mechanical Sciences. 51(9): 732–740.
[8] Dejardin, S., Thibaud, S., Gelin, J.C. and Michel, G. 2010. Experimental Investigations and Numerical Analysis for Improving Knowledge of Incremental Sheet Forming Process for Sheet Metal Parts. Journal of Materials Processing Technology. 210(2): 363–369.
[9] LI Jun-Chao, L., Chong, L. and Tong-Gui, Z. 2012. Thickness Distribution and Mechanical Property of Sheet Metal Incremental Forming based on Numerical Simulation. Transactions of Nonferrous Metals Society of China. 22(1): s54-s60.
[10] Honarpisheh, M., Abdolhoseini, M.J. and Amini, S., 2016. Experimental and Numerical Investigation of the Hot Incremental Forming of Ti-6Al-4V Sheet Using Electrical Current. The International Journal of Advanced Manufacturing Technology. 83(9-12): 2027-2037.
[11] Sakhtemanian, M.R., Honarpisheh, M. and Amini, S., 2019. A Novel Material Modeling Technique in the Single-point Incremental Forming Assisted by the Ultrasonic Vibration of Low Carbon Steel/Commercially Pure Titanium Bimetal Sheet. The International Journal of Advanced Manufacturing Technology. 102(1-4): 473–486.
[12] Sakhtemanian, M., Honarpisheh, M., amini, S. 2018. The Effect of Ultrasonic Vibrations on Mechanical Properties of Low Carbon Steel-pure Titanium Bilayer Sheet in Incremental Sheet Forming Process. 8(32): 109-124. (In Persian)
[13] Sedighi, M. and Honarpisheh, M., 2012. Experimental Study of Through-depth Residual Stress in Explosive Welded Al–Cu–Al Multilayer. Materials & Design, 37: 577-581.
[14] Honarpisheh, M., Dehghani, M. and Haghighat, E. 2015. Investigation of Mechanical Properties of Al/Cu Strip Produced by Equal Channel Angular Rolling. Procedia Materials Science. 11: 1-5.
[15] Honarpisheh, M., Niksokhan, J. and Nazari, F. 2016. Investigation of the Effects of Cold Rolling on the Mechanical Properties of Explosively-welded Al/St/Al Multilayer Sheet. Metallurgical Research & Technology. 113(1): 105-110.
[16] Sakhtemanian, M.R., Honarpisheh, M. and Amini, S. 2018. Numerical and Experimental Study on the Layer Arrangement in the Incremental Forming Process of Explosive-welded Low-carbon Steel/CP-titanium Bimetal Sheet. The International Journal of Advanced Manufacturing Technology. 95(9-12): 3781-3796.
[17] Honarpisheh, M. and Gheysarian, A. 2017. An Experimental Study on the process parameters of Incremental Forming of Explosively-Welded Al/Cu Bimetal. Journal of Computational & Applied Research in Mechanical Engineering (JCARME). 7(1): 73-83.
[18] Honarpisheh, M., Jobedar, M.M. and Alinaghian, I. 2018. Multi-response Optimization on Single-point Incremental Forming of Hyperbolic Shape Al-1050/Cu Bimetal Using Response Surface Methodology. The International Journal of Advanced Manufacturing Technology. 96(9-12): 3069-3080.
[19] Gheysarian, A. and Honarpisheh, M. 2018. Process Parameters Optimization of the Explosive-Welded Al/Cu Bimetal in the Incremental Sheet Metal Forming Process. Iranian Journal of Science and Technology. Transactions of Mechanical Engineering. 1-12.
[20] Honarpisheh, M., Keimasi, M. and Alinaghian, I. 2018. Numerical and Experimental Study on Incremental Forming Process of Al/Cu Bimetals: Influence of Process Parameters on the Forming Force, Dimensional Accuracy and Thickness Variations. Journal of Mechanics of Materials and Structures. 13(1): 35-51.
[21] Sakhtemanian, M.R., Amini, S. and Honarpisheh, M. 2018. Simulation and Investigation of Mechanical and Geometrical Properties of St/CP-titanium Bimetal Sheet During the Single Point Incremental Forming Process. Iranian Journal of Materials Forming. 5(1): 1-18.
[22] Honarpisheh, M., Asemabadi, M. and Sedighi, M. 2012. Investigation of Annealing Treatment on the Interfacial Properties of Explosive-welded Al/Cu/Al Multilayer. Materials & Design. 37: 122-127.
[23] Asemabadi, M., Sedighi, M. and Honarpisheh, M. 2012. Investigation of Cold Rolling Influence on the Mechanical Properties of Explosive-welded Al/Cu Bimetal. Materials Science and Engineering: A. 558: 144-149.
[24] Sedighi, M. and Honarpisheh, M. 2012. Investigation of Cold Rolling Influence on Near Surface Residual Stress Distribution in Explosive Welded Multilayer. Strength of Materials. 44(6): 693-698.
[25] Kotobi, M. and Honarpisheh, M. 2018. Through-depth Residual Stress Measurement of Laser Bent Steel–titanium Bimetal Sheets. The Journal of Strain Analysis for Engineering Design. 53(3): 130-140.
[26] PourjafariKasmaee, M. and Honarpisheh, M. 2015. Investigation of Annealing Treatment on the Mmechanical and Metallurgical Properties of Explosive-welded Al/St/Al Multilayer. Modares Mechanical Engineering. 15(1): 397-402. (In Persian)
[27] Fei, H.A.N., Mo, J.H., Qi, H.W., Long, R.F., Cui, X.H. and Li, Z.W. 2013. Springback Prediction for Incremental Sheet Forming based on FEM-PSONN Technology. Transactions of Nonferrous Metals Society of China. 23(4): 1061-1071.
[28] Khan, M.S., Coenen, F., Dixon, C., El-Salhi, S., Penalva, M. and Rivero, A., 2015. An intelligent process model: predicting springback in single point incremental forming. The International Journal of Advanced Manufacturing Technology. 76(9-12), pp.2071-2082.
[29] Wang, H., Zhang, R., Zhang, H., Hu, Q. and Chen, J. 2018. Novel Strategies to Reduce the Springback for Double-sided Incremental Forming. The International Journal of Advanced Manufacturing Technology. 96(1-4): 973-979.
[30] Zhang, Z., Zhang, H., Shi, Y., Moser, N., Ren, H., Ehmann, K.F. and Cao, J. 2016. Springback Reduction by Annealing for Incremental Sheet Forming. Procedia Manufacturing. 5: 696-706.