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aluminum sheet

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Series: ASM Handbook
Volume: 14B
Publisher: ASM International
Published: 01 January 2006
DOI: 10.31399/asm.hb.v14b.a0005168
EISBN: 978-1-62708-186-3
... Abstract This article discusses the numerical simulation of the forming of aluminum alloy sheet metals. The macroscopic and microscopic aspects of the plastic behavior of aluminum alloys are reviewed. The article presents constitutive equations suitable for the description of aluminum alloy...
Series: ASM Handbook
Volume: 22A
Publisher: ASM International
Published: 01 December 2009
DOI: 10.31399/asm.hb.v22a.a0005408
EISBN: 978-1-62708-196-2
... of the thermomechanical production of aluminum sheet and, in particular, highlights the main effects governing the evolution of microstructure and texture. The simulation tools used to model the evolution of microchemistry, microstructure, and texture upon deformation and recrystallization of aluminum alloys...
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Published: 01 January 2006
Fig. 3 Fracture limit of an aluminum sheet (AlMg0.4Si1.2-ka; sheet thickness, 1.25 mm or 0.05 in.) in straight flanging. Source: Ref 4 More
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Published: 01 January 1990
Fig. 5 Facility for producing aluminum sheet reroll directly from molten aluminum More
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Published: 01 January 1996
Fig. 2 Ratings of 1.6 mm (0.063 in.) aluminum sheet based on unit propagation energy (1 in. · lb/in. 2 = 0.175 kJ/m 2 ) More
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Published: 01 June 2016
Fig. 29 Aging characteristics of 6061 aluminum sheet alloys at room temperature (RT), 0 °C (32 °F), and −18 °C (0 °F) More
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Published: 01 June 2016
Fig. 31 Natural aging characteristics of 7050 aluminum sheet alloys at room temperature (RT), 0 °C (32 °F), and −18 °C (0 °F) More
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Published: 01 June 2016
Fig. 32 Aging characteristics of 7075 aluminum sheet alloys at room temperature, 0 °C (32 °F), and −18 °C (0 °F) More
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Published: 01 June 2016
Fig. 12 Macrostructure of pure aluminum sheet showing the grain size after reduction in thickness for the amounts shown, then annealed. Abnormal grain growth is most prominent between 3 and 10% reduction. Above 50% reduction, the structure has undergone primary recrystallization to establish More
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Published: 01 June 2016
Fig. 69 Aging characteristics of aluminum sheet alloys at room temperature (RT), 0 °C (32 °F), and −18 °C (0 °F). Source: Ref 2 More
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Published: 01 June 2016
Fig. 71 Aging characteristics of two aluminum sheet alloys at elevated temperatures, after solution treatment and quenching. Source: Ref 2 More
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Published: 31 October 2011
Fig. 10 Micrograph of 0.9 mm (0.04 in.) 6 xxx aluminum sheet metal. At 100 and 200 J, there is very little perturbation at the weld interface. The 400 and 600 J energy levels show increased perturbation at the weld interface. More
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Published: 31 October 2011
Fig. 11 Micrograph of 0.9 mm (0.04 in.) 6 xxx aluminum sheet metal ultrasonically welded at 800 J, showing perturbation and intermixing at the weld interface. Physical deformation at the weld interface and at the tip and anvil interfaces occurs concurrently. Mechanical mixing occurs More
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Published: 31 October 2011
Fig. 13 Weld formation of 1.1 to 1.5 mm (0.04 to 0.06 in.) aluminum sheet stack-ups using a pneumatic and a servo pedestal welder. Source: Ref 5 More
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Published: 01 January 2002
Fig. 26 Diffuse and localized necks in an 1100 aluminum sheet tensile specimen. Source: Ref 51 More
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Published: 30 November 2018
Fig. 40 Aging characteristics of aluminum sheet alloys at room temperature (RT), 0 °C (32 °F), and −18 °C (0 °F). Source: Ref 37 More
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Published: 30 November 2018
Fig. 42 Aging characteristics of two aluminum sheet alloys at elevated temperatures, after solution treatment and quenching. Source: Ref 37 More
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Published: 30 November 2018
Fig. 15 Cross section through an aluminum-sheet-to-extrusion joint assembled via RIVTAC high-speed nailing. Courtesy of Böllhoff Verbindungstechnik GmbH More
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Published: 30 November 2018
Fig. 5 Coiled aluminum sheet at Oswego, N.Y. hot mill. Courtesy of Novelis Inc. More
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Published: 30 November 2018
Fig. 1 Body-in-white example of parts formed from aluminum sheet. Courtesy of Honda More