Investigation of Springback Angle in Single Point Incremental Forming Process on Explosive Welded Cu/St/Cu Multilaye
Subject Areas :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
Keywords:
Abstract :
[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.