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cast aluminum

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Series: ASM Handbook Archive
Volume: 12
Publisher: ASM International
Published: 01 January 1987
DOI: 10.31399/asm.hb.v12.a0000620
EISBN: 978-1-62708-181-8
... Abstract This article is an atlas of fractographs that helps in understanding the causes and mechanisms of fracture of cast aluminum alloys and in identifying and interpreting the morphology of fracture surfaces. The fractographs illustrate the brittle fracture, microvoid coalescence, fatigue...
Series: ASM Handbook
Volume: 2
Publisher: ASM International
Published: 01 January 1990
DOI: 10.31399/asm.hb.v02.a0001062
EISBN: 978-1-62708-162-7
... Abstract This article is a compilation of property data for standard grades of cast aluminum alloys. Data are provided for mechanical, thermal, and electrical properties. The listing for each alloy includes commercial names, chemical compositions, applications, relevant specifications...
Series: ASM Handbook
Volume: 2B
Publisher: ASM International
Published: 15 June 2019
DOI: 10.31399/asm.hb.v02b.a0006548
EISBN: 978-1-62708-210-5
... Abstract This article aims to comprehensively review and summarize the material properties and engineering data for aluminum alloy castings and their many applications. The discussion focuses on conventional sand, permanent mold, and die castings as well as the premium engineered versions...
Series: ASM Handbook
Volume: 2B
Publisher: ASM International
Published: 15 June 2019
DOI: 10.31399/asm.hb.v02b.a0006553
EISBN: 978-1-62708-210-5
... Abstract This article summarizes some general alloy groupings by application or major characteristics. The groupings include cast rotor, general-purpose, elevated-temperature, wear-resistant, moderate-strength, high-strength, and high-integrity die casting alloys and cast aluminum alloys...
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Published: 01 January 2006
Fig. 8 Cast aluminum statue of Eros by Alfred Gilbert (cast 1929) in Liverpool, England, before treatment. The damage to wings was caused by corrosion of internal iron armatures. Courtesy of Martin Cooper, National Museums Liverpool. Photograph circa 1994 More
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Published: 01 December 2008
Fig. 5 (a) Centrifugally cast aluminum-graphite composite. (b) Cast iron cylinder block of a motorcycle engine fitted with an aluminum-silicon graphite liner More
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Published: 30 November 2018
Fig. 2 (a) Centrifugally cast aluminum-graphite composite. (b) Cast iron cylinder block of a motorcycle engine fitted with an aluminum-silicon graphite liner More
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Published: 30 November 2018
Fig. 18 Examples of squeeze-cast aluminum alloys. (a) Axle carrier cast from modified 383-T6 aluminum alloy. (b) Axle cover cast from modified 383-F aluminum alloy. (c) Front steering knuckle cast from A356.2-T6 with property requirements of >207 MPa (30 ksi) yield strength; >276 MPa (40 More
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Published: 15 June 2019
Fig. 11 Fatigue properties of conventionally cast and squeeze cast aluminum alloy A356.0-T6. Source: Ref 36 More
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Published: 01 December 2004
Fig. 34 Examples of a soft wrought aluminum alloy and a cast aluminum alloy finish polished using colloidal silica. (a) Annealed superpure aluminum, anodized in Barker's solution after polishing. Viewed using cross polarizers and sensitive tint plate. Reproduction of a color micrograph. 50 More
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Published: 01 January 1986
Fig. 5 Macrostructure of as-cast aluminum ingot. Transverse section shows outer chill zone and columnar grains that have grown perpendicularly to the mold faces. Etched using Tucker's reagent. 1.5× More
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Published: 01 January 1987
Fig. 105 Fracture surface of a cast aluminum alloy A357-T6 air-turbine blade. (a) Overall view of the fracture surface showing a large inclusion (dark) near the tip of the blade. Approximately 0.4×. (b) and (c) Decohesion at the interfaces between the inclusion and the aluminum matrix More
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Published: 01 January 1987
Fig. 109 Porosity in a fracture of a cast aluminum alloy A357 blade from a small air turbine. The blade fractured by overload from an impact to its outer edge. More
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Published: 01 January 1987
Fig. 938 Fractured bell-crank fitting of cast aluminum alloy 356.0-T6. The fitting, which was from an aircraft rear horizontal elevator, fractured in a crash. No crack origin was found. See also Fig. 939 , 940 , 941 , 942 , 943 , 944 , 945 , 946 , 947 , 948 , 949 , 950 , 951 More
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Published: 01 January 2002
Fig. 43 Dealuminification of a cast aluminum bronze furnace electrode pressure ring exposed to recirculating cooling water (pH = 7.8 to 8.3, conductivity = 1000 to 1100 μS). The preferentially attacked γ phase left behind a residue of copper (darkened regions in eutectoid and along grain More
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Published: 01 January 1990
Fig. 6 Porosity as a function of hydrogen content in sand-cast aluminum and aluminum alloy bars More
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Published: 01 December 2004
Fig. 3 Cast aluminum-silicon alloy. Etchant: 60% HCl, 30% HNO 3 , 5%HF, 5%H 2 O More
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Published: 01 December 2004
Fig. 10 Macrostructure of as-cast aluminum ingot. Transverse section shows outer chill zone and columnar grains that have grown perpendicularly to the mold faces. Etched using Tucker's reagent. 1.5×. Source: Ref 8 More
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Published: 01 December 2004
Fig. 38 Result obtained by abrading a cast aluminum 19.9% Si alloy with a polymer lap extrinsically charged with 9 μm grade diamond abrasive. 250×. Source: Ref 1 More
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Published: 01 December 2004
Fig. 26 Microstructure of a cast aluminum-silicon alloy depicting well-developed dendritic structure. The dendrite arm spacing (DAS) is the mean center-to-center distance between the dendrite arms. More