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In this research, AA7075 aluminum alloy cladded with pure aluminum was processed by compression bonding at three different temperatures. The AA7075 layers in the compression-bonded samples revealed a gradient microstructure through the thickness. The grains near the interfaces of pure Al/AA7075 were significantly elongated (hard domain), while the grains in the midthickness of AA7075 layers were slightly elongated (soft domain). The bonding quality between pure aluminum layers was improved with the increase in the compression bonding temperature. The characteristic peaks of α-aluminum in the compression-bonded sample at 25°C shifted to the right owing to the cold plastic deformation. By increasing the compression temperature from 25 to 200°C, the shift value was decreased due to the occurrence of dynamic and static recovery. By increasing the temperature of compression bonding from 25 to 200°C, the texture parameter value of recrystallization texture was decreased from~2.6 to~1.4, while the texture parameter of deformation texture was increased from~1.8 to ~ 4.1. A texture transition from recrystallization texture to deformation texture occurred by increasing the compression temperature. By increasing the compression bonding temperature from 25 to 200°C, the hardness and strength of samples were reduced owing to the promotion of dynamic and static recovery. Interestingly, the strength, ductility, and toughness of the compression-bonded sample at 200°C were increased simultaneously compared to the as-received alloy. Introducing gradient microstructure in the AA7075 layer could overcome the trade-of of strength and ductility, and as a result, toughness was enhanced signifcantly. By increasing the temperature of the compression bonding process from 25 to 200°C, the number and size of dimples were increased and a transition in fracture mechanism from intergranular to transgranular ductile fracture occurred.
Czasopismo
Rocznik
Tom
Strony
art. e245, 1--13
Opis fizyczny
Bibliogr. 18 poz., il., wykr.
Twórcy
autor
- Babol Noshirvani University of Technology, Department of Materials Engineering, Babol, Iran
autor
- Babol Noshirvani University of Technology, Department of Materials Engineering, Babol, Iran
Bibliografia
- 1. Amininejad A, Jamaati R, Hosseinipour SJ. Infuence of deformation and post-annealing treatment on the microstructure and mechanical properties of austenitic stainless steel. Trans Indian Inst Met. 2021;74(7):1799-807.
- 2. Oliaei M, Jamaati R. Improvement of the strength-ductility-toughness balance in interstitial-free steel by gradient microstructure. Mater Sci Eng A. 2022;845: 143237.
- 3. Hassanpour H, Jamaati R, Hosseinipour SJ. Efect of gradient microstructure on the mechanical properties of aluminum alloy. Mater Charact. 2021;174: 111023.
- 4. Zhang JY, Sun MY, Xu B, Hu X, Liu S, Xie BJ, Li DZ. Evolution of the interfacial microstructure during the plastic deformation bonding of copper. Mater Sci Eng A. 2019;746:1-10.
- 5. Jiang X, Zhang L, Zhang L, Huang T, Wu G, Huang X, Mishin OV. Heterogeneous microstructure and enhanced mechanical properties in annealed multilayered IF steel. Mater Sci Eng A. 2019;759:262-71.
- 6. Hassanpour H, Jamaati R, Hosseinipour SJ. A novel technique to form gradient microstructure in AA5052 alloy. Mater Sci Eng A. 2020;777: 139075.
- 7. Zhang Y, Ding C, Liu J, Lu Y, Li T. Interfacial microstructure evolution and mechanical properties of AlCoCrFeNi2.1 alloy by multilayer additive hot compression bonding. Intermetallics. 2023;156:107867.
- 8. Jamaati R, Toroghinejad MR. Cold roll bonding bond strengths: review. Mater Sci Technol. 2013;27(7):1101-8.
- 9. Camilo Magalhães DC, Cintho OM, Rubert JB, Sordi VL, Kliauga AM. The role of shear strain during accumulative roll-bonding of multilayered composite sheets: pattern formation, microstructure and texture evolution. Mater Sci Eng A. 2020;796:140055.
- 10. Mendes A, Timokhina I, Molotnikov A, Hodgson PD, Lapovok R. Role of shear in interface formation of aluminium-steel multilayered composite sheets. Mater Sci Eng A. 2017;705:142-52.
- 11. Zhao Y, Wang T, Gao B, Gao Z, Han J, Zhang S, Huang Q. Towards enhanced strength-ductility in pure copper by fabricating hetero grain composite laminates. J Alloys Compd. 2022;928: 167192.
- 12. Jamaati R, Toroghinejad MR. Effect of friction, annealing conditions and hardness on the bond strength of Al/Al strips produced by cold roll bonding process. Mater Des. 2010;31(9):4508-13.
- 13. Yousefpour F, Jamaati R, Aval HJ. Synergistic effects of hybrid (HA + Ag) particles and friction stir processing in the design of a high-strength magnesium matrix bio-nano composite with an appropriate texture for biomedical applications. J Mech Behav Biomed Mater. 2022;125: 104983.
- 14. Zhang X, Jia Z, Liu T, Shi Y, Liu H, Wang X, Wang Y, Liu X, Zhou Q. Enhancing the strength-ductility synergy of medium-Mn steel by introducing multiple gradient structures. Mater Sci Eng A. 2022;860: 144268.
- 15. Ding H, Cui X, Wang Z, Zhao T, Wang Y, Zhang Y, Chen H, Huang L, Geng L, Chen J. A new strategy for fabrication of unique hetero-structured titanium laminates and visually tracking their synchronous evolution of strain partitions versus microstructure. J Mater Sci Technol. 2022;107:70-81.
- 16. Ma S, Li Y, Li S, Xu B, Zhang T, Jiao Z, Zhao D, Wang Z. Synergetic strengthening and deformation mechanisms in gradient Al0.1CoCrFeNi high-entropy alloy. Mater Sci Eng A. 2022;829:142165.
- 17. Yang X, Ma X, Moering J, Zhou H, Wang W, Gong Y, Tao J, Zhu Y, Zhu X. Influence of gradient structure volume fraction on the mechanical properties of pure copper. Mater Sci Eng A. 2015;645:280-5.
- 18. Wu XL, Yang MX, Yuan FP, Chen L, Zhu YT. Combining gradient structure and TRIP effect to produce austenite stainless steel with high strength and ductility. Acta Mater. 2016;112:337-46.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8f2754a8-cc4b-40de-aabe-f4d4bd32b8f5
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