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Solidification of particle-reinforced metal-matrix composites

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TLDR
In this paper, a one-dimensional enthalpyramidal model of MMC solidification was formulated, wherein particle settling occurring in the solidifying matrix was coupled to the Enthalpy equation by means of the Richardson-Zaki hindered settling correlation.
Abstract
The solidification behavior of ceramic particle-reinforced metal-matrix composites (MMCs) is different from that of the bare matrix, not only because of the presence of the ceramic particles, but also due to their redistribution in the melt that results in nonhomogeneous thermophysical properties. The MMCs comprised of 10-to 15-μm SiC particles of varying volume fractions, dispersed uniformly in a modified aluminum A356 alloy by the melt stirring technique, were solidified unidirectionally in a thermocouple-instrumented cylindrical steel mold. The cooling rates were continually monitored by measuring temperatures at different depths in the melt, and the solidified MMCs were sectioned into disks and chemically analyzed for SiC volume fraction. The results point out that the cooling rate increased with increasing volume fraction of SiC particles. A small increase in the bulk SiC volume fraction of the cast MMC was observed due to particle settling during solidification. A one-dimensional enthalpy model of MMC solidification was formulated, wherein particle settling occurring in the solidifying matrix was coupled to the enthalpy equation by means of the Richardson-Zaki hindered settling correlation. A comparative study of simulations with experiments suggested that the thermal response of SiC particles used in this study was similar to that of single crystals, and their presence increased the effective thermal conductivity of the composite.

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Citations
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Journal ArticleDOI

Microstructure and wear properties of laser-deposited functionally graded Inconel 690 reinforced with TiC

TL;DR: In this article, titanium carbide (TiC) reinforcement particles were embedded in Inconel 690 with laser direct deposition to build functionally gradient metal matrix composites (FGMMCs) and microstructures of the MMC and distribution of TiC particles were characterized with an optical microscope, SEM and X-ray diffraction.
Journal ArticleDOI

Solidification and casting/mould interfacial heat transfer characteristics of aluminum matrix composites

TL;DR: In this paper, the roles of the melt and the mould material on the cooling curve parameters and the heat transfer at the casting/mould interface during solidification of Al(356) alloy and its composites reinforced with silicon carbide and graphite particles are investigated.
Journal ArticleDOI

Densification behavior and mechanical properties of nanocrystalline TiC reinforced 316L stainless steel composite parts fabricated by selective laser melting

TL;DR: In this paper, nanocrystalline TiC reinforced 316L composite parts were fabricated using selective laser melting, and the effects of the TiC mass fraction, particle size, and processing parameters on the relative density, microhardness, and mechanical properties of the composite were investigated.
Journal ArticleDOI

Microstructure and Mechanical Properties of TiC-Reinforced 316L Stainless Steel Composites Fabricated Using Selective Laser Melting

TL;DR: In this article, the influence of the mass fraction on the microstructure evolution, microhardness, friction properties, wear properties, and corrosion resistance of the TiC/316Lss composites was investigated.
Journal ArticleDOI

Microstructure development, tribological property and underlying mechanism of laser additive manufactured submicro-TiB2 reinforced Al-based composites

TL;DR: In this paper, the microstructure evolution and tribological property of SLM-processed AlSi10Mg/TiB2 composites were investigated, and the composites showed high microhardness of 126 HV 0.2, exceeding those of the Al-Si alloys and composites processing by conventional techniques.
References
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Numerical heat transfer and fluid flow

TL;DR: In this article, the authors focus on heat and mass transfer, fluid flow, chemical reaction, and other related processes that occur in engineering equipment, the natural environment, and living organisms.
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Heat Transfer

J. P. Holman
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Numerical Methods

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