Open Access
Issue |
ITM Web Conf.
Volume 34, 2020
International Conference on Applied Mathematics and Numerical Methods – third edition (ICAMNM 2020)
|
|
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Article Number | 02008 | |
Number of page(s) | 10 | |
Section | Applied Mathematics and Numerical Methods | |
DOI | https://doi.org/10.1051/itmconf/20203402008 | |
Published online | 03 December 2020 |
- M. Belte and D. Dra˘gulin, ATC Aluvation, Importance of the cooling rate during the heat treatment process of aluminium, International Aluminium Journal, 61-64 (2018). [Google Scholar]
- X. Chen and Y. Liu, Finite Element Modeling and Simulation with ANSYS Workbench (A CRC Press, August 11, 2014). [CrossRef] [Google Scholar]
- T. Croucher, Quenching of aluminum alloys: what this key step accomplishes, Heat Treating 14(5) May, 20-21 (1982). [Google Scholar]
- F. Fracasso, Influence of quench rate on the hardness obtained after artificial ageing of an Al-Si-Mg alloy, (Master Thesis, University of Padova, Padova, Italy, 2010). [Google Scholar]
- R. Jeschar, E. Specht, and C.H.R. Köhler, Chapter 6 Heat Transfer during Cooling of Heated Metals with Vaporizable Liquids, Quenching Theory and Technology, Second Edition (Boidar Licic, CRC Press, Boca Raton, FL, 2010) 158-178. [Google Scholar]
- J. Lemaitre, Handbook of Materials Behavior Models (Academic Press, San Diego, CA, 2001) 1200 pp. [Google Scholar]
- J. Mackerle, Finite element analysis and simulation of quenching and other heat treatment processes: A bibliography (1976-2001), Computational Materials Science 27(3), 313-332 (2003). [CrossRef] [Google Scholar]
- S. Moaveni, Finite Element Analysis: Theory and Application with ANSYS (Global Edition, 2014) 936 pp. [Google Scholar]
- M.B. Prime and M.R. Hill, Residual stress, stress relief, and inhomogeneity in aluminum plate, Scripta Materialia, 46(1), 77-82 (2002). [CrossRef] [Google Scholar]
- P. Rashed and M.M.A. Hossain, Control of Distortion in Aluminium Heat Treatment, Chapter 13, Fundamentals of Aluminium Metallurgy, Recent Advances (Woodhead Publishing Series in Metals and Surface Engineering, 2018) 495-524. [Google Scholar]
- J.S. Robinson, D.A. Tanner, and C.E. Truman, The origin and management of residual stress in heat-treatable aluminium alloys, Strain 50(3), 185-207 (2014). [CrossRef] [Google Scholar]
- B.D. Storey, Fluid dynamics and heat transfer, An introduction to the fundamentals (Olin College, 2015). [Google Scholar]
- P.T. Summers, Y. Chen, C.M. Rippe, B. Allen, A.P. Mouritz, S.W. Case, and B.Y. Lattimer, Overview of aluminum alloy mechanical properties during and after fires, Fire Science Reviews 4(3) (2015). [CrossRef] [Google Scholar]
- G.E. Totten, G.M. Webster, and C.E. Bates, Chapter 20 Quenching, Handbook of Aluminum Volume 1: Physical Metallurgy and Processes (Eds. G.E. Totten, and D.S. MacKenzie, CRC Press, Boca Raton, Fla., 2003) 971-1062. [Google Scholar]
- J. Wolberg, Data Analysis Using the Method of Least Squares: Extracting the Most Information from Experiments (Springer-Verlag, New York, 2005) 263 pp. [Google Scholar]
- P.J. Withers, H. Bhadeshia, Residual stress-II: nature and origins, Mater. Sci. Tech. 17, 366-375 (2001). [CrossRef] [Google Scholar]
- ASM Handbook Volume 2: Properties and Selection: Nonferrous Alloys and SpecialPurpose Materials (ASM International, 1990) 1328 pp. [Google Scholar]
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