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耐磨TiNi形状记忆合金设计准则的有限元研究[J]. 摩擦学学报, 2004, 24(6): 541-544.
引用本文: 耐磨TiNi形状记忆合金设计准则的有限元研究[J]. 摩擦学学报, 2004, 24(6): 541-544.
Research of Design Rules for Wear-Resistant TiNi Shape Memory Alloy by Finite Element Method[J]. TRIBOLOGY, 2004, 24(6): 541-544.
Citation: Research of Design Rules for Wear-Resistant TiNi Shape Memory Alloy by Finite Element Method[J]. TRIBOLOGY, 2004, 24(6): 541-544.

耐磨TiNi形状记忆合金设计准则的有限元研究

Research of Design Rules for Wear-Resistant TiNi Shape Memory Alloy by Finite Element Method

  • 摘要: 采用有限元方法模拟微突体在TiNi形状记忆合金表面的压入过程,研究了伪弹性应变、伪弹性模量和相变启动应力等参数对TiNi合金抗磨性能的影响,并初步确立了TiNi形状记忆合金耐磨材料设计准则.结果表明:伪弹性应变对TiNi形状记忆合金摩擦学性能的影响最显著;就TiNi形状记忆合金耐磨材料的设计而言,应当强调提高伪弹性应变、降低伪弹性模量、增加相变启动应力;同时满足上述3方面要求的TiNi形状记忆合金的耐磨特性最优.

     

    Abstract: Welded surfacing layers containing internally produced superhard TiC and VC particulates were prepared on Q235-A alloy making use of the high temperature arc metallurgic reaction among Fe-Ti, Fe-V, graphite, and rutile, etc. The abrasive wear-resistance of the resulting welded surfacing layers was evaluated on an MLD-10 friction and wear tester, using the surfacing layer made from EDZCr-C-15 welding rod as a reference. The phase compositions and microstructures and worn surface morphology of the welded surfacing layers were analyzed by means of X-ray diffraction and scanning electron microscopy, while the macrohardness and microhardness were comparatively investigated as well. As the results, the surfacing layers containing dispersively distributed carbides particulates had much better abrasive wear-resistance than the one made from the EDZCr-C-15 welding rod, though they had a little bit larger hardness than the latter. The greatly increased wear-resistance of the welded surfacing layers containing the superhard carbides particulates was thus attributed to their special phase compositions and microstructures. Namely, the target welded surfacing layers were composed of lath martensite as the matrix which was capable of well bonding and supporting the dispersed carbides particulates and decreasing the abrasion energy by way of plastic deforming. In other words, the supaerhard carbides particulates and the soft lath martensite matric had well balanced hardness and toughness, which contributed to greatly increase the wear-resistance of the welded surfacing layers containing the superhard carbides particulates.

     

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