scholarly journals The influence of melt convection on dendritic spacing of downward unsteady-state directionally solidified Sn-Pb alloys

2006 ◽  
Vol 9 (1) ◽  
pp. 51-57 ◽  
Author(s):  
José Eduardo Spinelli ◽  
Otávio Fernandes Lima Rocha ◽  
Amauri Garcia
Author(s):  
Maressa Gandolfi ◽  
Marcella Gautê Xavier ◽  
Leonardo Fernandes Gomes ◽  
Rodrigo Valenzuela Reyes ◽  
Amauri Garcia ◽  
...  

This work explored and contrasted the effect of microstructure on the tensile properties of AlSi10Mg alloys generated by transient directional solidification depending on variations in cooling rate and Magnesium (Mg) content (i.e., 0.45 and 1wt.% Mg), with a focus on understanding the dendritic growth and phases constitution. Optical and Scanning electron (SEM) microscopies, CALPHAD and thermal analysis were used to describe the microstructure, forming phases and resulting tensile properties. The findings showed that the experimental evolution of the primary dendritic spacing is very similar when both directionally solidified (DS) Al-10wt.% Si-0.45wt.% Mg and Al-10wt.% Si-1wt.% Mg alloys samples are compared. The secondary dendritic spacing was lower for the alloy with more Mg, especially considering the range of high growth velocities. Moreover, a greater fraction of (Al+Si+Mg2Si) ternary eutectic islands surrounding the -Al dendritic matrix was noted for the alloy with 1wt.% Mg. As a result of primary dendritic spacings greater than 180 m related to lower cooling rates, slightly higher tensile properties were attained for the Al-10wt.% Si-0.45wt.% Mg alloy. In contrast, combining dendritic refining (< 150 m) and larger Mg2Si fraction, fast solidified DS Al-10wt.% Si-1wt.% Mg samples exhibited higher tensile strength and elongation. The control of cooling rate and fineness of the dendritic array provided a new insight related to the addition of Mg in slightly higher levels than conventional ones, capable of achieving a better balance of tensile properties in AlSi10Mg alloys.


Author(s):  
Danilo Luvizotto Gonçalves ◽  
Noe Cheung ◽  
Ricardo Orcelio Miranda de Oliveira Junior

This works aims to study the mechanical properties of a Al-1%wt Mn alloy directionally solidified under unsteady-state conditions. The as-cast microstructure was analysed by measuring the cellular spacing, and the mechanical properties were obtained through Vickers microhardness and tensile strength tests. The correlation between the mechanical results and the as-cast microstructure was fundamental to imply a relation between the solidification thermal parameters and the rolling process in which this kind of alloy is submitted to afterwards.


2003 ◽  
Vol 361 (1-2) ◽  
pp. 111-118 ◽  
Author(s):  
Otávio Lima Rocha ◽  
Cláudio Alves Siqueira ◽  
Amauri Garcia

2014 ◽  
Vol 17 (2) ◽  
pp. 498-510 ◽  
Author(s):  
Diego B. Carvalho ◽  
Antonio L. Moreira ◽  
Daniel J. Moutinho ◽  
José M. Filho ◽  
Otávio L. Rocha ◽  
...  

Author(s):  
Uğur BÜYÜK ◽  
Emin ÇADIRLI ◽  
Hasan KAYA ◽  
M. İzzettin YILMAZER

In this work, influences of composition (Cu content) and growth velocity (V) on the microstructure (dendritic spacing) of Al–Mn–Cu ternary alloys have been investigated. Al–1.9Mn–xCu (x=0.5, 1.5 and 5 wt. %) alloys were prepared using metals of 99.90% high purity in the vacuum atmosphere. These alloys were directionally solidified upwards under various growth velocities (8.3–978 m/s) using a Bridgman-type directional solidification furnace at a constant temperature gradient (7.1 K/mm). Measurements of primary dendrite arm spacing () of the samples were carried out and then expressed as functions of growth velocity and Cu content. Especially, cell-dendritic transition was detected for low growth velocity (41.6 m/s) for alloys containing 0.5 and 1.5Cu. It has been found that the values of  decrease with increasing V and decreasing Cu content. Keywords: Aluminum alloys, Solidification, Cell-dendritic transition, Dendrite arm spacing


Sign in / Sign up

Export Citation Format

Share Document