Mohammad Sajjad Mahdieh
1
(
Department of Mechanical Engineering, Shahid Chamran University of Ahvaz, Ahvaz, Iran
)
Farshad Nazari
2
(
Mechanical Engineering Department, Shahid Chamran University of Ahvaz, Ahvaz, Iran
)
Hussam Yuness Mane’
3
(
Mechanical Eng. Dep., Chamran University of Ahvaz, Ahvaz, Iran.
)
Keywords:
Abstract :
1. Tisza, M., Metal Forming in the automotive industry. 2015, Miskolc University Press.
2. Mahdieh, M.S. and M.R. Esteki, Feasibility Investigation of Hydroforming of Dental Drill Body by FEM Simulation. Journal of Modern Processes in Manufacturing and Production, 2022. 11(2): p. 71-83.
3. Mahdieh, M.S. and A. Monjezi, Investigation of an Innovative Cleaning Method for the Vertical Oil Storage Tank by FEM Simulation. Iranian Journal of Materials Forming, 2022.
4. Mahdieh, M.S., H.M.B. Zadeh, and A.Z. Reisabadi, Improving surface roughness in barrel finishing process using supervised machine learning. Journal of Simulation and Analysis of Novel Technologies in Mechanical Engineering, 2023. 15(2): p. 5-15.
5. Saraeian, P., et al., Influence of Vibratory Finishing Process by Incorporating Abrasive Ceramics and Glassy Materials on Surface Roughness of CK45 Steel. ADMT Journal, 2016. 9(4): p. 1-6.
6. Vakili Sohrforozani, A., et al., A Study of Abrasive Media Effect on Deburring in Barrel Finishing Process. Journal of Modern Processes in Manufacturing and Production, 2019. 8(3): p. 27-39.
7. Vakili Sohrforozani, A., et al., Effects of Abrasive Media on Surface Roughness in Barrel Finishing Process. ADMT Journal, 2020. 13(3): p. 75-82.
8. Mahdieh, M.S., et al., A study on stamping of airliner’s tail connector part through FEM simulation. Journal of Simulation and Analysis of Novel Technologies in Mechanical Engineering, 2023. 15(3): p. 5-13.
9. Sajjad Mahdieh, M., F. Nazari, and A.R. Khairullah, A Study on The Effects of Different Pad Materials on Brake System Performance of a High-Capacity Elevator by FEM Simulation. International Journal of Advanced Design and Manufacturing Technology, 2024. 65(4): p. 61.
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12. Yusoff, A.R., S.K. Lim, and M. Ramadan, Microstructure and Mechanical Properties of Boron Sheet Metal Steels in Hot Press Forming Process With Nanofluid as a Coolant. 2022.
13. Park, H., et al., Interface exfoliation mechanism of galvannealed steel sheet in bead-slide during press-forming. Materials Today Communications, 2020. 25: p. 101669.
14. Allen, S. and S.-M. Mahdavian, The effect of lubrication on die expansion during the deep drawing of axisymmetrical steel cups. Journal of materials processing technology, 2008. 199(1-3): p. 102-107.
15. Nick, M., et al., Numerical Investigation of Damage in Single-step, Two-step, and Reverse Deep Drawing of Rotationally Symmetric Cups from DP800 Dual Phase Steel. Procedia Manufacturing, 2020. 47: p. 636-642.
16. Luo, L., et al., Influence of blank holder-die gap on micro-deep drawing of SUS304 cups. International Journal of Mechanical Sciences, 2021. 191: p. 106065.
17. Choudhari, C. and S. Khasbage, Experimental investigation of forming parameters for square cup deep drawing process. Materials Today: Proceedings, 2021. 44: p. 4261-4267.
18. Goud, R.R., K.E. Prasad, and S.K. Singh, Formability limit diagrams of extra-deep-drawing steel at elevated temperatures. Procedia materials science, 2014. 6: p. 123-128.
19. Singh, S.K., et al., Understanding formability of extra-deep drawing steel at elevated temperature using finite element simulation. Materials & Design, 2010. 31(9): p. 4478-4484.
20. Firat, M., A finite element modeling and prediction of stamping formability of a dual-phase steel in cup drawing. Materials & Design, 2012. 34: p. 32-39.
21. Hardt, D. and R. Fenn, Real-time control of sheet stability during forming. 1993.
22. Yossifon, S., et al., On the acceptable blank-holder force range in the deep-drawing process. Journal of Materials Processing Technology, 1992. 33(1-2): p. 175-194.
23. Majlessi, S. and D. Lee, Deep drawing of square-shaped sheet metal parts, part 2: experimental study. 1993.
24. Mahdieh, M.S., The surface integrity of ultra-fine grain steel, Electrical discharge machined using Iso-pulse and resistance–capacitance-type generator. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 2020. 234(4): p. 564-573.
25. Mahdieh, M.S., Recast layer and heat-affected zone structure of ultra-fined grained low-carbon steel machined by electrical discharge machining. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 2020. 234(5): p. 933-944.
26. Mahdieh, M.S., Improving surface integrity of electrical discharge machined ultra-fined grain Al-2017 by applying RC-type generator. Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 2023: p. 09544089231202329.
27. Mahdieh, M.S. and R. Mahdavinejad, Comparative study on electrical discharge machining of ultrafine-grain Al, Cu, and steel. Metallurgical and Materials Transactions A, 2016. 47(12): p. 6237-6247.
28. Mahdieh, M.S. and R. Mahdavinejad, Recast layer and micro-cracks in electrical discharge machining of ultra-fine-grained aluminum. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 2018. 232(3): p. 428-437.
29. Mahdieh, M.S. and R.A. Mahdavinejad, A study of stored energy in ultra-fined grained aluminum machined by electrical discharge machining. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2017. 231(23): p. 4470-4478.
30. Mahdieh, M.S. and S. Zare-Reisabadi, Effects of electro-discharge machining process on ultra-fined grain copper. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2019. 233(15): p. 5341-5349.