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首页> 外文期刊>Journal of Materials Engineering and Performance >Microstructure, Hardness, and Corrosion Behavior of TiC-Duplex Stainless Steel Composites Fabricated by Spark Plasma Sintering
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Microstructure, Hardness, and Corrosion Behavior of TiC-Duplex Stainless Steel Composites Fabricated by Spark Plasma Sintering

机译:由火花等离子体烧结制造的TIC-DOPLEX不锈钢复合材料的微观结构,硬度和腐蚀行为

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Duplex stainless steel composites with various weight fractions of TiC particles are prepared by spark plasma sintering. Ferritic 434L and austenitic 316L stainless steel powders are premixed in a 50:50 weight ratio and added with 3-9 wt.% TiC. The compacts are sintered in the solid state under vacuum conditions at 1223 K for 5 min. The effects of TiC content on the microstructure, hardness, and corrosion resistance of duplex stainless steel composites fabricated by powder metallurgy are evaluated. The results indicate that the TiC particulates as reinforcements can be distributed homogeneously in the steel matrix. Densification of sintered composites decreases with increasing TiC content. M23C6 carbide precipitates along grain boundary, and its neighboring Cr-Mo-depleted region is formed in the sintered microstructure, which can be eliminated subsequently with appropriate heat treatment. With the addition of TiC, the hardness of duplex stainless steel fabricated by powder metallurgy can be markedly enhanced despite increased porosity in the composites. However, TiC particles increase the corrosion rate and degrade the passivation capability, particularly for the composite with TiC content higher than 6 wt.%. Weakened metallurgical bonding in the composite with high TiC content provides the preferred sites for pitting nucleation and/or dissolution.
机译:通过火花等离子体烧结制备具有各种重量分数的双相不锈钢复合材料。铁素体434L和奥氏体316L不锈钢粉末以50:50重量比预混合,并加入3-9重量%。%Tic。压块在1223k的真空条件下在固态中烧结5分钟。评估Tic含量对由粉末冶金制备的双相不锈钢复合材料的微观结构,硬度和耐腐蚀性的影响。结果表明,作为增强件的TIC颗粒可以在钢基质中均匀地分布。烧结复合材料的致密化随着TIC含量的增加而降低。 M23C6碳化物沿晶界沉淀,其相邻的Cr-Mo-耗尽区域形成在烧结的微观结构中,其随后可以通过适当的热处理消除。随着TIC的添加,尽管复合材料中的孔隙率增加,但是可以显着提高由粉末冶金制造的双相不锈钢的硬度。然而,TiC颗粒增加了腐蚀速率并降解了钝化能力,特别是对于具有高于6重量%的Tic含量的复合材料。具有高TIC含量的复合材料中的冶金键合的冶金键合提供了用于点燃成核和/或溶解的优选地点。

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