Refine Your Search

Search Results

Viewing 1 to 4 of 4
Technical Paper

Influence of Heat Treatment on Mechanical Properties of Al-Zr and Al-Zr-Mg Alloys

2017-11-07
2017-36-0138
It is known that aluminum alloys can be classified as alloys for the production of castings and wrought alloys (rolling, extrusions, forgings and others). Wrought aluminum alloys are subdivided into heat-treatable alloys, those that respond to heat treatment to increase their mechanical strength and non heat-treatable alloys, whose mechanical properties can only be improved by cold working. The use of aluminum alloys has a great advantage due to the strength / weight ratio of Al, it has been used in industrial applications to different solutions, such as in the construction of automobiles, aerial and space vehicles, packaging and in overhead transmission lines. This paper aims to analyze the effect of heat treatment on the microhardness, ultimate tensile strength and in the elongation of the Al-0,18%Zr; Al-0.18%Zr-2.0%Mg and Al-0.18%Zr-6.0%Mg alloys compared to results obtained without heat treatment. The alloys were melted in a muffle furnace and cast in a water-cooled Cu mold.
Technical Paper

Influence of Cold Working on Mechanical Properties of Al-Zr and Al-Zr-Mg Alloys

2017-11-07
2017-36-0239
The Hardening by cold work is capable of increasing the mechanical strength of non-ferrous metals. The combination of alloying elements in solid solution and cold working is extremely effective in achieving greater strength for aluminium alloys. However, some alloys may be susceptible to stress corrosion and are notoriously difficult to fabricate during hot and cold work. A requirement for adding the alloy elements in this work will be that the interaction between them will provide hardening by additional cold working, but with no occurrence of chemical interaction between them and not removing them from the solid solution. This paper aims to analyze the effect of cold working on mechanical properties of Al-0.18%Zr, Al-0.18%Zr-2.0%Mg and Al-0.18%Zr-6.0%Mg alloys compared to results obtained without cold working. The alloys were melted in a muffle furnace and cast in a water-cooled Cu mold.
Technical Paper

Application of Aluminum Alloy - Zirconium in Automotive Parts Manufacturing

2017-11-07
2017-36-0235
The current Brazilian technological scenario undergoes major transformations, the automobile industry is part of this panorama, where new technologies are presented and the other improved, in this segment we have non-ferrous aluminum alloys, which with the addition of alloys transform into alloys of high performance. Elements of aluminum alloys undergo modifications in their mechanical properties with variation of temperatures, deformation, chemical composition among others. The present work aims at comparing the thermomechanical properties of the experimental results and computational simulations of Al-0.05% Cu- [0.35-0.45] % Fe-0.22% Zr alloy for application in the automotive industry. The alloy was obtained from Al-EC modified by iron insertions in the range of [0.35 - 0.45] % and 0.22% Zr.
Technical Paper

Effect of Cold Work and Addition of Solutes Ti and Ni about Ultimate Tensile Strength and Elongation of the Al-0.05wt%Cu-[0.24 to 028]wt%Fe- 0.7wt%Si Alloy

2016-10-25
2016-36-0533
The search for new materials to automotive industry has been intensified in the last decade. Among these materials is the aluminum which is widely used in the construction of automotive parts, sheet and in the manufacture of cables used in line transmission and distribution of electricity. Aluminum and its alloys have high deformation rate which can be hardened by plastic deformation, and low specific weight and high coefficient of thermal conductivity. This work was carried out in order to study the effect of titanium elements (content of 0.050 wt%) and Nickel (content of 0.030 wt.%) in the alloy Al-0.05wt% Cu [0.24 to 0.28]wt% Fe-0.7wt% Si. The alloys in study have concentrations within the chemical composition limits of alloys series 1XXX with minimum purity of 99.0%. The solidification processes were carried out via the steel mold (format of "U").
X