Microstructure and Properties of Metal Mold Surface by Rare Earth Catalytic Eutectic Boronizing[J]. 2014, 48(10): 96-100+107.
DOI:
Microstructure and Properties of Metal Mold Surface by Rare Earth Catalytic Eutectic Boronizing[J]. 2014, 48(10): 96-100+107.DOI: 10.7652/xjtuxb201410015.
Microstructure and Properties of Metal Mold Surface by Rare Earth Catalytic Eutectic Boronizing
The rare earth catalytic eutectic boronizing is used in treating the surface of 45 steel mould to improve the wear resistance of the mould surface. The influence of rare earth addition on microstructure
thickness
hardness gradient and wear resistance of the eutectic boride layer is studied. The action of activity and catalysis of the rare earth and the wear mechanism of the eutectic boride layer are analyzed. The results show that the microstructure of eutectic boride layer consists of boride and γ-Fe. When the addition of rare earth is 9%
the best effect of eutectic boronizing is achieved
in the sense that the thickness of eutectic boride layer is 1 times thinker than the boride layer obtained by the traditional solid boronizing
the hardness of the boride layer increases remarkably and the hardness gradient decreases. The rare earth has the action of activity and catalysis
promotes formation of hard phase
and effectively fines the microstructure of eutectic boronizing layer. The rare earth catalytic eutectic boronizing improves the wear resistance of boride layer by 18% and increases wear distance 12 times
compared with the traditional solid boronizing. The micro-cutting is the main wear mechanisms. Increasing the thickness of eutectic boride layer
improving the hardness
and decreasing the hardness gradient are the main factors to increase material wear resistance.
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references
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