Microstructure, mechanical, and high-stress abrasive wear behaviour of as-cast and heat-treated Al–Si–SiCp composite
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Raj Kumar Singh
, Amit Telang und Satyabrata Das
Abstract
The microstructure, mechanical, and high-stress abrasive wear of as-cast and heat-treated LM25-SiC composites were compared with those of a matrix alloy and a low-cost hypereutectic alloy (LM30). The microstructure of the composite exhibits uniformly dispersed SiC particles and good interfacial bonding between the SiC particles and the matrix. Heat treatment caused the needle-shaped silicon to become spherical and improved the homogeneity of its dispersion in the matrix. The hardness, ultimate tensile strength, yield strength, and wear resistance of the materials were improved, but the elongation was reduced as a result of the heat treatment. The wear rate and friction coefficient of the materials decreased as the sliding distance increased for both the as-cast and heat-treated samples. The wear surface morphology and wear debris analyses were performed by using high-resolution field emission scanning electron microscopy.
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© 2019, Carl Hanser Verlag, München
Artikel in diesem Heft
- Contents
- Contents
- Original Contributions
- Nanoindentation analysis methods examined with finite element simulations
- Experimental investigation of gas/matte/spinel equilibria in the Cu–Fe–O–S system at 1250°C and P(SO2) = 0.25 atm
- Replacing martensite with nanobainite in moderately alloyed carburised steel for better wear performance
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- Microstructure, mechanical, and high-stress abrasive wear behaviour of as-cast and heat-treated Al–Si–SiCp composite
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- Particle and microstructural characteristics in the coarse-grained heat-affected zone of Al–Ti–Ca complex deoxidized steels
- Corrosion behavior of stir-cast Al–TiB2 metal matrix composites
- Correlation between anodization variables and surface properties of titania nanotube arrays for dye-sensitized solar cells
- Wetting and sealing of the interface between silicate glass and copper
- Short Communications
- Investigation of MWCNTs addition on mechanical properties of cordierite glass-ceramic composites
- DGM News
- DGM News
Artikel in diesem Heft
- Contents
- Contents
- Original Contributions
- Nanoindentation analysis methods examined with finite element simulations
- Experimental investigation of gas/matte/spinel equilibria in the Cu–Fe–O–S system at 1250°C and P(SO2) = 0.25 atm
- Replacing martensite with nanobainite in moderately alloyed carburised steel for better wear performance
- Microstructure, hardness and wear behaviour of NbC reinforced AA7075 matrix composites fabricated by friction stir processing
- Microstructure, mechanical, and high-stress abrasive wear behaviour of as-cast and heat-treated Al–Si–SiCp composite
- Mechanical and morphological properties of bamboo mesoparticle/nylon 6 composites
- Particle and microstructural characteristics in the coarse-grained heat-affected zone of Al–Ti–Ca complex deoxidized steels
- Corrosion behavior of stir-cast Al–TiB2 metal matrix composites
- Correlation between anodization variables and surface properties of titania nanotube arrays for dye-sensitized solar cells
- Wetting and sealing of the interface between silicate glass and copper
- Short Communications
- Investigation of MWCNTs addition on mechanical properties of cordierite glass-ceramic composites
- DGM News
- DGM News