Publication: Corrosion and mechanical properties of Al/Al2O3 composites fabricated via accumulative roll bonding process: Experimental and numerical simulation
| dc.contributor.author | Heydari Vini, Mohammad | |
| dc.contributor.author | Daneshmand, Saeed | |
| dc.contributor.author | Alabboodi, Khalid O. | |
| dc.contributor.author | Ali, Ali B.M. | |
| dc.contributor.author | Jasim, Dehyaa J. | |
| dc.contributor.author | Salahshour, Soheil | |
| dc.contributor.author | Hekmatifar, Maboud | |
| dc.contributor.institution | Heydari Vini, Mohammad, Department of Mechanical Engineering, Islamic Azad University, Isfahan Branch, Isfahan, Iran | |
| dc.contributor.institution | Daneshmand, Saeed, Department of Mechanical Engineering, Islamic Azad University, Isfahan Branch, Isfahan, Iran | |
| dc.contributor.institution | Alabboodi, Khalid O., Department of Chemical Engineering and Petroleum Industries, Al-Mustaqbal University, Hillah, Iraq | |
| dc.contributor.institution | Ali, Ali B.M., Air Conditioning Engineering Department, University of Warith Al-Anbiyaa, Karbala, Iraq | |
| dc.contributor.institution | Jasim, Dehyaa J., Department of Petroleum Engineering, Al-Amarah University College, Amarah, Iraq | |
| dc.contributor.institution | Salahshour, Soheil, Faculty of Engineering and Natural Sciences, Istanbul Okan University, Tuzla, Turkey, Faculty of Engineering and Natural Sciences, Bahçeşehir Üniversitesi, Istanbul, Turkey, Department of Mathematics and Computer Science, Lebanese American University, Beirut, Lebanon | |
| dc.contributor.institution | Hekmatifar, Maboud, New Technologies Research Center, Amirkabir University of Technology, Tehran, Iran | |
| dc.date.accessioned | 2025-10-05T14:41:56Z | |
| dc.date.issued | 2024 | |
| dc.description.abstract | With the advancement of science and technology and the construction of metal-based composites (MMC), it became possible to achieve improved properties that were not easily available in an alloy. In fact, with the emergence of such technology, manufacturers were able to adjust the resulting materials according to their needs in such a way as to provide mechanical strength, hardness, corrosion resistance, or other desired properties. These composites were used in various aerospace, automotive, construction, and production industries. Aluminum-based composites are among the structures that have taken an important place in the industry due to their lightweight and high strength. The present study produced bi-alloy aluminum-based 1060/5083 composites fabricated with alumina particles with a Hot ARBp at T = 380 °C. Also, the effect of rolling steps on the roll bonding mechanism is investigated using numerical simulation. As the novelty of this study and for the first time, a bi-alloy 1050/5083 composites reinforced Al<inf>2</inf>O<inf>3</inf> particles via ARB process have been produced and then, potential dynamic polarization in 3.5 Wt% NaCl solution was used to study the corrosion properties of these composites. The corrosion behavior of these samples was compared and studied with that of the annealed aluminum. The study aimed to investigate the bonding behavior between the bi-alloy layers. So, as a result of enhancing influence on the number of ARBp, this experimental investigation revealed a significant enhancement in the main electrochemical parameters and the inert character of the Alumina particles. Reducing the active zones of the material surfaces could delay the corrosion process. Results showed that the corrosion resistance of the sample fabricated after six steps improved more than 100 % in comparison with the initial annealed Al alloy. Also, the average peeling force improved from 45 N to 94 N for the sample fabricated with six steps. Moreover, at a higher number of steps, the corrosion of MMC improved. Moreover, increasing the number of ARBsteps illustrated an improvement in the wear resistance of samples. Finally, the samples' bonding interface, corrosion surface, and peeled surface were investigated using scanning electron microscopy (SEM). © 2024 Elsevier B.V., All rights reserved. | |
| dc.identifier.doi | 10.1016/j.surfcoat.2024.131370 | |
| dc.identifier.issn | 02578972 | |
| dc.identifier.scopus | 2-s2.0-85203876460 | |
| dc.identifier.uri | https://doi.org/10.1016/j.surfcoat.2024.131370 | |
| dc.identifier.uri | https://hdl.handle.net/20.500.14719/6934 | |
| dc.identifier.volume | 494 | |
| dc.language.iso | en | |
| dc.publisher | Elsevier B.V. | |
| dc.relation.source | Surface and Coatings Technology | |
| dc.subject.authorkeywords | Bi- Alloy Mmc | |
| dc.subject.authorkeywords | Bonding Mechanism | |
| dc.subject.authorkeywords | Corrosion | |
| dc.subject.authorkeywords | Numerical Simulation | |
| dc.subject.authorkeywords | Wear Resistance | |
| dc.subject.authorkeywords | Aluminum Alloys | |
| dc.subject.authorkeywords | Bismuth Alloys | |
| dc.subject.authorkeywords | Brinell Hardness | |
| dc.subject.authorkeywords | Calcium Alloys | |
| dc.subject.authorkeywords | Corrosion Resistance | |
| dc.subject.authorkeywords | Corrosion Resistant Alloys | |
| dc.subject.authorkeywords | Corrosive Effects | |
| dc.subject.authorkeywords | Electrochemical Corrosion | |
| dc.subject.authorkeywords | Particle Reinforced Composites | |
| dc.subject.authorkeywords | Roll Bonding | |
| dc.subject.authorkeywords | Sodium Alloys | |
| dc.subject.authorkeywords | Accumulative Roll Bonding | |
| dc.subject.authorkeywords | Alumina Particles | |
| dc.subject.authorkeywords | Bi- Alloy Mmc | |
| dc.subject.authorkeywords | Bonding Mechanism | |
| dc.subject.authorkeywords | Bonding Process | |
| dc.subject.authorkeywords | Mechanical | |
| dc.subject.authorkeywords | Properties Of Al | |
| dc.subject.authorkeywords | Property | |
| dc.subject.authorkeywords | Resulting Materials | |
| dc.subject.authorkeywords | Science And Technology | |
| dc.subject.authorkeywords | Aluminum Corrosion | |
| dc.subject.indexkeywords | Aluminum alloys | |
| dc.subject.indexkeywords | Bismuth alloys | |
| dc.subject.indexkeywords | Brinell Hardness | |
| dc.subject.indexkeywords | Calcium alloys | |
| dc.subject.indexkeywords | Corrosion resistance | |
| dc.subject.indexkeywords | Corrosion resistant alloys | |
| dc.subject.indexkeywords | Corrosive effects | |
| dc.subject.indexkeywords | Electrochemical corrosion | |
| dc.subject.indexkeywords | Particle reinforced composites | |
| dc.subject.indexkeywords | Roll bonding | |
| dc.subject.indexkeywords | Sodium alloys | |
| dc.subject.indexkeywords | Accumulative roll bonding | |
| dc.subject.indexkeywords | Alumina particles | |
| dc.subject.indexkeywords | Bi- alloy MMC | |
| dc.subject.indexkeywords | Bonding mechanism | |
| dc.subject.indexkeywords | Bonding process | |
| dc.subject.indexkeywords | Mechanical | |
| dc.subject.indexkeywords | Properties of Al | |
| dc.subject.indexkeywords | Property | |
| dc.subject.indexkeywords | Resulting materials | |
| dc.subject.indexkeywords | Science and Technology | |
| dc.subject.indexkeywords | Aluminum corrosion | |
| dc.title | Corrosion and mechanical properties of Al/Al2O3 composites fabricated via accumulative roll bonding process: Experimental and numerical simulation | |
| dc.type | Article | |
| dcterms.references | Farhadipour, Pedram, Influence of Temperature of Accumulative Roll Bonding on the Mechanical Properties of AA5083–1% Al2O3 Composite, Powder Metallurgy and Metal Ceramics, 56, 9-10, pp. 496-503, (2018), Heydari Vini, Mohammad, Mechanical properties, bond strength and microstructural evolution of AA1060/TiO2 composites fabricated by warm accumulative roll bonding (WARB), International Journal of Materials Research, 108, 1, pp. 53-59, (2017), Heydari Vini, Mohammad, Mechanical properties and bond strength of bimetallic AA1050/AA5083 laminates fabricated by warm-accumulative roll bonding, Canadian Metallurgical Quarterly, 57, 2, pp. 160-167, (2018), Trans Indian Inst Met, (2021), Chupradit, Supat, Pin angle thermal effects on friction stir welding of AA5058 aluminum alloy: CFD simulation and experimental validation, Materials, 14, 24, (2021), Adv Mater Res, (2019), Gao, Yuanfei, Effect of nano Al2O3 particles on the mechanical and wear properties of Al/Al2O3 composites manufactured via ARB, Reviews on Advanced Materials Science, 61, 1, pp. 734-743, (2022), Kianfar, Farshid, Synthesis of Isophthalic Acid/Aluminum Nitrate Thin Film Nanocomposite Membrane for Hard Water Softening, Journal of Inorganic and Organometallic Polymers and Materials, 29, 6, pp. 2176-2185, (2019), Korchef, A., Corrosion behavior of commercial aluminum alloy processed by equal channel angular pressing, International Journal of Corrosion, 2013, (2013), Lee, Sangmae, Effect of solid fraction on formability and mechanical properties in a vertical-type rheo squeeze-casting processg, Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 225, 2, pp. 184-196, (2011) | |
| dspace.entity.type | Publication | |
| local.indexed.at | Scopus | |
| person.identifier.scopus-author-id | 57191474258 | |
| person.identifier.scopus-author-id | 13805151700 | |
| person.identifier.scopus-author-id | 57811175200 | |
| person.identifier.scopus-author-id | 59375113300 | |
| person.identifier.scopus-author-id | 57225906716 | |
| person.identifier.scopus-author-id | 23028598900 | |
| person.identifier.scopus-author-id | 57208127315 |
