Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Blending of iron and silicon carbide powders for producing metal matrix composites by laser sintering process

View through CrossRef
PurposeThe purpose of this paper is to study the effect of blending time, SiC content and fill ratio on the homogeneity of iron‐silicon carbide powder mixture, blended in double‐cone blender; to evaluate density, microstructure and micro hardness of laser sintered iron and iron‐SiC specimens; and study the feasibility of building a complex iron‐SiC metal matrix composite (MMC) part by direct metal laser sintering (DMLS) process.Design/methodology/approachThe morphology and particle size of iron and silicon carbide powders were evaluated. Nickel coating was carried out on silicon carbide particles. Blending of iron‐SiC powders were carried out in two phases in a double‐cone blending equipment. In the first phase, three tests were conducted with fill ratios (ratio of volume of conical blender to volume of powder mixture) of 1.68, 3.39, and 6.8 percent while iron‐SiC weight ratio was kept constant at 97:3. In the second phase, four tests were conducted with iron‐SiC weight ratios of 99:1, 98:2, 97:3, and 95:5 while keeping a constant fill ratio of 1.68 percent. In both the phases, blending was carried out for duration of 43 minutes. Homogeneity of the powder mixture was evaluated at different intervals of time by adopting sampling process. Sintering was carried out on iron and iron‐SiC powder mixture using DMLS machine at laser speed of 50, 75, 100, and 125 mm/s. Microstructure, density and micro hardness studies were carried out on the sintered specimens. A 3D model of a part with complex geometry was modeled using Unigraphics CAD/CAM software and prototype part was built by DMLS technology using the blended iron‐2 weight percent SiC powder.FindingsA reduction in blending time was observed with increase in SiC content and decrease in fill ratio. Microstructure and micro hardness tests conducted on laser sintered iron‐silicon carbide specimens, reveal the homogeneity of blended powder. The density of the iron‐SiC composites sintered at a laser speed of 50 and 75 mm/s, decreased with increase in SiC content. Further, an increase in the micro hardness of iron‐SiC composites was observed with increase in SiC content and decrease in laser speed. Complex functional part was built by DMLS technology with out any supports.Research limitations/implicationsThe experiments were conducted with standard blending equipment in which the speed is limited to 48 revolutions per minute only.Originality/valueMeager information is available on blending of powders for producing MMCs by laser sintering process. The work presented in this paper will be a guideline for researchers to carry out further work in blending of powders for producing MMCs by rapid prototyping process.
Title: Blending of iron and silicon carbide powders for producing metal matrix composites by laser sintering process
Description:
PurposeThe purpose of this paper is to study the effect of blending time, SiC content and fill ratio on the homogeneity of iron‐silicon carbide powder mixture, blended in double‐cone blender; to evaluate density, microstructure and micro hardness of laser sintered iron and iron‐SiC specimens; and study the feasibility of building a complex iron‐SiC metal matrix composite (MMC) part by direct metal laser sintering (DMLS) process.
Design/methodology/approachThe morphology and particle size of iron and silicon carbide powders were evaluated.
Nickel coating was carried out on silicon carbide particles.
Blending of iron‐SiC powders were carried out in two phases in a double‐cone blending equipment.
In the first phase, three tests were conducted with fill ratios (ratio of volume of conical blender to volume of powder mixture) of 1.
68, 3.
39, and 6.
8 percent while iron‐SiC weight ratio was kept constant at 97:3.
In the second phase, four tests were conducted with iron‐SiC weight ratios of 99:1, 98:2, 97:3, and 95:5 while keeping a constant fill ratio of 1.
68 percent.
In both the phases, blending was carried out for duration of 43 minutes.
Homogeneity of the powder mixture was evaluated at different intervals of time by adopting sampling process.
Sintering was carried out on iron and iron‐SiC powder mixture using DMLS machine at laser speed of 50, 75, 100, and 125 mm/s.
Microstructure, density and micro hardness studies were carried out on the sintered specimens.
A 3D model of a part with complex geometry was modeled using Unigraphics CAD/CAM software and prototype part was built by DMLS technology using the blended iron‐2 weight percent SiC powder.
FindingsA reduction in blending time was observed with increase in SiC content and decrease in fill ratio.
Microstructure and micro hardness tests conducted on laser sintered iron‐silicon carbide specimens, reveal the homogeneity of blended powder.
The density of the iron‐SiC composites sintered at a laser speed of 50 and 75 mm/s, decreased with increase in SiC content.
Further, an increase in the micro hardness of iron‐SiC composites was observed with increase in SiC content and decrease in laser speed.
Complex functional part was built by DMLS technology with out any supports.
Research limitations/implicationsThe experiments were conducted with standard blending equipment in which the speed is limited to 48 revolutions per minute only.
Originality/valueMeager information is available on blending of powders for producing MMCs by laser sintering process.
The work presented in this paper will be a guideline for researchers to carry out further work in blending of powders for producing MMCs by rapid prototyping process.

Related Results

Silicon Carbide
Silicon Carbide
AbstractSilicon carbide, SiC, is a crystalline material having a color that varies from nearly clear through pale yellow or green to black, depending on the amount of impurities. I...
PENGARUH PROSES SINTERING TERHADAP PERUBAHAN DENSITAS, KEKERASAN DAN MIKROSTRUKTUR PELET U-ZrHx
PENGARUH PROSES SINTERING TERHADAP PERUBAHAN DENSITAS, KEKERASAN DAN MIKROSTRUKTUR PELET U-ZrHx
PENGARUH PROSES SINTERING TERHADAP PERUBAHAN DENSITAS, KEKERASAN DAN MIKROSTRUKTUR PELET U-ZrHx. Proses sintering pelet bahan bakar U-ZrHx dilakukan untuk memperoleh densitas yang ...
Carbides, Cemented
Carbides, Cemented
AbstractCemented carbides belong to a class of hard, wear‐resistant, refractory materials in which the hard carbides of Group 4–6 (IVB‐VIB) metals are bound together or cemented by...
Mechanical Study of Aluminium -Silicon Carbide -Tungsten Carbide Hybrid Composite Synthesized Through Powder Metallurgy Technique
Mechanical Study of Aluminium -Silicon Carbide -Tungsten Carbide Hybrid Composite Synthesized Through Powder Metallurgy Technique
In this study, powder metallurgy is used to create hybrid metal matrix alloys made of aluminium-silicon carbide -tungsten carbide. Aluminium metal matrix composites are now vastly ...
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v1
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v1
Modern plant tissues are often processed for phytolith analysis. They represent a fundamental source of comparison for archeological and palaeoenvironmental phytolith assemblages; ...
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v2
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v2
Modern plant tissues are often processed for phytolith analysis. They represent a fundamental source of comparison for archeological and palaeoenvironmental phytolith assemblages; ...
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v1
Phytolith extraction and counting procedure for modern plant material rich in silica skeletons v1
Modern plant tissues are often processed for phytolith analysis. They represent a fundamental source of comparison for archeological and palaeoenvironmental phytolith assemblages; ...
Influence of pretreatment of SiC on microstructure and properties of SiCp/A390
Influence of pretreatment of SiC on microstructure and properties of SiCp/A390
In this paper, two pretreatment methods of silicon carbide (SiC) particles were adopted: washing by hydrochloric acid (HCl) and high-temperature oxidation after washing by hydrochl...

Back to Top