Title of article :
Effects of interface formation kinetics on the microstructural properties of wear-resistant metal–matrix composites
Author/Authors :
Ilo، نويسنده , , S. and Just، نويسنده , , Ch. and Badisch، نويسنده , , E. and Wosik، نويسنده , , J. and Danninger، نويسنده , , H.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2010
Pages :
8
From page :
6378
To page :
6385
Abstract :
Hard-particle metal–matrix composites (MMC) are generally used to increase the lifetime of machinery equipment exposed to severe wear conditions. Depending on the manufacturing technology, dissolution reactions of hard phases undergo different temperature/time profiles during processing affecting the microstructure and mechanical properties of the MMCs. Therefore, quantification of the carbide dissolution effects on the microstructure and micro-mechanical properties is the key to success in the development and optimisation of MMCs. Dissolution kinetics of WC/W2C in Ni-based matrices were determined in the liquid-sintering with a well-defined temperature/time profile. Microscopic evaluation of the samples showed two intermediate layers between matrix and carbides. The layer thicknesses were quantitatively determined using image analysis. A kinetics relationship was used for modelling the interface layer growth as a function of processing time, temperature and Cr-addition. Furthermore, the micro-mechanical properties of the intermediate layers were examined using nanoindentation. Based on the chemical composition and the hardness of the intermediate layers, formation of mixed Ni- and W-carbides and/or borides on the interface microstructures was indicated. Results showed that the chemical composition and the micro-mechanical properties were almost constant within all the detected layers in the interface zone between matrix and carbides, indicating that the microstructure gradients were most dependent on the intensity of the MMC processing.
Keywords :
Metal–matrix composites , tungsten carbide , dissolution kinetics , Ni-based alloys
Journal title :
MATERIALS SCIENCE & ENGINEERING: A
Serial Year :
2010
Journal title :
MATERIALS SCIENCE & ENGINEERING: A
Record number :
2166578
Link To Document :
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