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Journal ArticleDOI

Influence of Aging Parameters on the Tensile Properties and Quality Index of Al-9 Pct Si-1.8 Pct Cu-0.5 Pct Mg 354-Type Casting Alloys

TLDR
In this paper, the influence of age-hardening parameters, aging temperature and time, on the tensile properties and quality indices of a high-strength Al-9 pct Si casting alloy, namely, 354-Al-9pct Si-1.8 pct Cu-0.5 pct Mg, was investigated.
Abstract
The current study was carried out with a view to investigating the influence of age-hardening parameters, aging temperature and time, on the tensile properties and quality indices of a high-strength Al-9 pct Si casting alloy, namely, 354-Al-9 pct Si-1.8 pct Cu-0.5 pct Mg. Quality charts were used as an evaluation tool for selecting the optimum conditions to be applied, in practice, in order to develop high strength and optimum quality in 354 casting alloy. Aging at a low temperature of 428 K (155 °C) was observed to produce the greatest strength and optimum quality in the 354-type castings compared to aging at higher temperatures. The peak strength observed for 354 alloy may be attained after shorter aging times on the condition that the aging temperature is increased. The aging times required for reaching peak strength in 354 alloys are 72 hours, 40 hours, 8 hours, 1 hour, and 15 minutes at aging temperatures of 428 K, 443 K, 468 K, 493 K, and 518 K (155 °C, 170 °C, 195 °C, 220 °C, and 245 °C), respectively. Aging treatment at higher temperatures is accompanied by a reduction in the tensile properties and quality index values of the castings; however, it also introduces the possibility of a significant economical strategy for minimizing the time and the cost of this same treatment. Aging treatment at a lower temperature of 428 K (155 °C) produces fine and dense precipitates displaying smaller interparticle spacing, while at higher aging temperatures, such as 518 K (245 °C), the precipitates are coarser in size, less dense, and more widely dispersed. The quality charts developed in the course of the current research facilitate the interpretation and evaluation of the tensile properties of the 354 alloy. Such charts provide a logical evaluation tool, from the metallurgical point of view, for an accurate prediction of the influence of aging parameters studied on the properties of the alloys. Depending on the required level of tensile properties and based on the quality charts developed, it is possible to make a rigorous selection as to the most suitable aging parameters to be applied to the 354 alloy so as to obtain the best possible cost-effective compromise between alloy strength and quality.

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Citations
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Journal ArticleDOI

Phase formation in as-solidified and heat-treated Al–Si–Cu–Mg–Ni alloys: Thermodynamic assessment and experimental investigation for alloy design

TL;DR: In this paper, the phase formation in Al−7Si−(0−1)Ni−0.35Mg alloys under equilibrium and non-equilibrium (Scheil cooling) conditions was investigated.
Journal ArticleDOI

The effects of cooling rate and heat treatment on mechanical and thermal characteristics of Al–Si–Cu–Mg foundry alloys

TL;DR: In this paper, the microstructure of the Al−9.7Si−0.7Cu−Mg alloy solidified by different cooling rates was reported and solution heat treatment followed by aging treatment was carried out for the effects of heat treatment on mechanical and thermal characteristics.
Journal ArticleDOI

Effect of Fe content on the fracture behaviour of Al–Si–Cu cast alloys

TL;DR: In this paper, cracks are mostly initiated by the fragmentation or cleavage of perforated β-phase platelets, in addition to that of coarse Si particles and undissolved Cu-intermetallics.
Journal ArticleDOI

HRTEM and HAADF-STEM of precipitates at peak ageing of cast A319 aluminium alloy

TL;DR: The precipitates at the peak-aged condition have been identified as mainly θ" together with a smaller amount of θ'.
Journal ArticleDOI

Optimization of A354 Al-Si-Cu-Mg Alloy Heat Treatment: Effect on Microstructure, Hardness, and Tensile Properties of Peak Aged and Overaged Alloy

TL;DR: In this article, a double-stage solution treatment was proposed for T6 heat treatment of A354 (Al-Si-Cu-Mg) casting alloy, where the first stage aimed at homogenization and dissolution of the low melting phase while the second stage at a higher temperature was evaluated to foster dissolution of Cu/Mg rich intermetallics and keep the solution time and temperature as low as possible.
References
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TL;DR: Precipitation hardening has long been used to increase the strength of commercial alloys, such as quenched and tempered steels and the duralumin type aluminium alloys as discussed by the authors.
Journal ArticleDOI

Phase relations and precipitation in Al–Mg–Si alloys with Cu additions

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Journal ArticleDOI

Microstructural Evolution and Age Hardening in Aluminium Alloys: Atom Probe Field-Ion Microscopy and Transmission Electron Microscopy Studies

TL;DR: In this article, the authors examined the microstructural evolution in selected aluminium alloys based on commercial age hardenable 2000, 6000, and 7000 series alloys and showed that the nature and kinetics of the precipitation process depend on the solute-solute interactions that produce solute clusters.
Journal ArticleDOI

Crystal structure and stability of complex precipitate phases in Al–Cu–Mg–(Si) and Al–Zn–Mg alloys

TL;DR: In this article, first-principles total energy calculations were used to elucidate both the crystal structures and formation enthalpies of complex precipitates in multicomponent Al alloys.
Book

Handbook of Aluminum: Vol. 1: Physical Metallurgy and Processes

TL;DR: In this article, a referred handbook of aluminum vol 1 physical metallurgy and processes is presented. But the handbook is not a reference book, it is an ebook that will come up with the money for you worth.
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