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Al 6082 aluminum alloy has excellent corrosion resistance, strength, and formability. However, owing to the recrystallization effect of a hot working process, coarse grains form easily in this material, which reduces its strength and service life. The novel continuous casting direct rolling (CCDR) method can prevent the deterioration of this material. Thus, we used CCDR Al 6082 aluminum alloy as the research material in this study. By subjecting a CCDR Al 6082 aluminum alloy to heat treatment (T4 and T6) and cold rolling, the influence of recrystallization effect on its mechanical properties and on impact failure resistance were explored. The results demonstrated that the specimen subjected to T4 heat treatment had a higher elongation and that the specimen subjected to T6 heat treatment had a higher strength. After cold rolling, the hardness and strength of the specimens subjected to different heat treatments (coded T4R4 and T6R4) increased because of the work's hardening effect. Moreover, the elongations of both specimens decreased, but they were higher than the industrial standard (>10%). The strength of specimen T6R4 was higher (up to 400 MPa) than specimen T4R4. Moreover, relative to specimen T4R4, specimen T6R4 had greater tensile and Charpy impact failure toughness.
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http://dx.doi.org/10.3390/ma17040805 | DOI Listing |
Materials (Basel)
June 2025
Department of Production Management, Technical University Czestochowa, 42-201 Czestochowa, Poland.
Modern requirements for aluminum alloys used in mechanical engineering and aviation include increased strength characteristics and refined microstructure. One of the promising methods for improving the properties of aluminum alloys is rolling on a three-high skew rolling mill, which provides intense plastic deformation and a fine-grained structure. This study describes the results of numerical modeling of the rolling process of aluminum alloy 6082 rods in a three-high skew-type mill.
View Article and Find Full Text PDFMaterials (Basel)
April 2025
School of Materials Science and Engineering, Harbin Institute of Technology, Weihai 264209, China.
To enhance the mechanical properties of 6082 aluminum alloy, a novel Sc- and Zr-microalloyed 6082 alloy was fabricated through squeeze casting technology. Microalloying with Sc and Zr substantially refined the microstructure of alloy, achieving an average grain size of 136.36 μm-a 31.
View Article and Find Full Text PDFACS Appl Mater Interfaces
April 2025
Department of Chemical Engineering and Technology, State Research Institute Center for Physical Sciences and Technology, Sauletekio 3, Vilnius LT 10257, Lithuania.
Recent advances in ceramic materials, particularly porous alumina (AlO), have significantly enhanced the safety and efficacy of medical implants by improving biocompatibility and modulating cellular behavior for biomedical applications. Variations in the surface structure and chemical composition of porous AlO promote different biological responses and coating stability, underscoring the need for further biological and corrosion research. Traditional methods for producing alumina ceramics from powder are expensive, time-consuming, and limited in their ability to create complex shapes and large structures due to the brittleness of alumina.
View Article and Find Full Text PDFMicromachines (Basel)
March 2025
Research and Development Department, ZwickRoell, 89079 Ulm, Germany.
Miniaturized components for enhanced integrated functionality or thin sheets for lightweight applications often consist of face-centered cubic metals. They exhibit good strength, corrosion resistance, formability and recyclability. Microfabrication technologies, however, may introduce cold work or detrimental heat-induced lattice defects into the material, with consequences for the mechanical properties.
View Article and Find Full Text PDFSci Rep
March 2025
Mechanical Department, Faculty of Technology and Education, Suez University, Suez, 43512, Egypt.
The present research investigates the impact of eccentric shoulder tools on the microstructure and mechanical properties of friction stir welded (FSWed) aluminum alloy AA6082-T6. Two tools, one with an eccentric shoulder and one with an aligned shoulder, were employed under identical welding parameters: a rotational speed of 600 rpm, travel speed of 250 mm/min, and tilt angles of 0° and 3°. The four FSWed joints produced were characterized using optical microscopy, tensile testing, and hardness testing.
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