Javascript must be enabled to continue!
Oxidation Mechanism of Al-Sn Bearing Alloys
View through CrossRef
Oxidation of Al-Sn bearing alloy occurs during production, processing and use, which reduces both alloy performance and performance of coatings applied to the alloy surface. Therefore, the oxidation mechanism of Al-Sn bearing alloy is studied at 25, 180, 300, and 500 °C. The oxidation morphologies of the alloy were observed by scanning electron microscopy (SEM), and the oxidation products were determined by X-ray diffraction (XRD). The oxidation weight gain curves were obtained by thermogravimetric analysis. The experimental results show that: Al-Sn bearing alloy is oxidized quickly to form Al2O3. As the oxidation temperature increases, Sn phase start to precipitate along the grain boundary and form networked spheroids of Sn on the alloy surface. The amount of precipitation increases with further increase of the oxidation temperature. Cracks and holes are left in the alloy. The oxide layer is mainly composed of Sn, SnO2, and Al2O3. At 25 °C, oxidation rate of Al-Sn alloy approach zero. At 180, 300, and 500 °C, the oxidation rate increases quickly conforming to a power function, and eventually remains stable at about 3 × 10−6 mg·mm−2·s−1.
Title: Oxidation Mechanism of Al-Sn Bearing Alloys
Description:
Oxidation of Al-Sn bearing alloy occurs during production, processing and use, which reduces both alloy performance and performance of coatings applied to the alloy surface.
Therefore, the oxidation mechanism of Al-Sn bearing alloy is studied at 25, 180, 300, and 500 °C.
The oxidation morphologies of the alloy were observed by scanning electron microscopy (SEM), and the oxidation products were determined by X-ray diffraction (XRD).
The oxidation weight gain curves were obtained by thermogravimetric analysis.
The experimental results show that: Al-Sn bearing alloy is oxidized quickly to form Al2O3.
As the oxidation temperature increases, Sn phase start to precipitate along the grain boundary and form networked spheroids of Sn on the alloy surface.
The amount of precipitation increases with further increase of the oxidation temperature.
Cracks and holes are left in the alloy.
The oxide layer is mainly composed of Sn, SnO2, and Al2O3.
At 25 °C, oxidation rate of Al-Sn alloy approach zero.
At 180, 300, and 500 °C, the oxidation rate increases quickly conforming to a power function, and eventually remains stable at about 3 × 10−6 mg·mm−2·s−1.
Related Results
Experimental investigation on microstructure fractal characteristics of low-temperature oxidation of gas-bearing coal
Experimental investigation on microstructure fractal characteristics of low-temperature oxidation of gas-bearing coal
Abstract
In order to study the multi-field coupling mechanism of gas and coal spontaneous combustion, low-temperature nitrogen adsorption and SEM were applied to carry out ...
Oxidation Kinetics Analysis of Crude Oils with Different Viscosities
Oxidation Kinetics Analysis of Crude Oils with Different Viscosities
In order to compare the oxidation kinetics parameters of crude oils with different properties in the process of crude oil oxidation, six different crude oil samples were selected t...
Diffusion and its Application in NiMnGa Alloys
Diffusion and its Application in NiMnGa Alloys
Heusler NiMnGa alloys are often categorized as ferromagnetic shape memory alloys or magnetocaloric materials, which are important for both practical applications and fundamental re...
Phase-controlled internal oxidation and solute redistribution in Sb- and Cr-modified Ag-Sn-In-Ni alloys
Phase-controlled internal oxidation and solute redistribution in Sb- and Cr-modified Ag-Sn-In-Ni alloys
The internal oxidation of multicomponent Ag-based alloys is controlled not only by oxygen diffusion through the Ag matrix but also by the constitution and reactivity of solute-rich...
Bioresorbable Zn-based alloys for biomedical applications
Bioresorbable Zn-based alloys for biomedical applications
(English) Biodegradable metals emerged as promising materials for bioresorbable devices avoiding the potential side effects of permanent implants. Among them, zinc (Zn) arose dueto...
A Detailed Study of the Mineralogy and Petrology of the Kipawa Rare Earth Elements Deposit (Canada)
A Detailed Study of the Mineralogy and Petrology of the Kipawa Rare Earth Elements Deposit (Canada)
Abstract
The Kipawa Syenite Complex is composed of peralkaline leucosyenites, mesosyenites, mafic syenites, amphibole syenites, fenites, peralkaline granite, and ...
Smart Bearing Sensor
Smart Bearing Sensor
The recent increase in vessel shaftline bearing incidents indicates that a static shaft alignment design may not be suitable for all operational shaftline loading conditions. Hull ...

