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Microstructure formation and abrasive wear resistance of a boron-modified superduplex stainless steel produced by spray forming

机译:喷射成形硼改性超双相不锈钢的显微组织形成和耐磨性

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摘要

The microstructure formation and wear resistance of a superduplex stainless steel modified with the addition of 3 wt% boron produced by spray forming were investigated. Thermodynamic simulations were used as comparison basis and to explain the experimentally observed microstructure, which was composed by primary M_2B-type borides, an austenitic-ferritic matrix, and eutectic M_3B_2-type borides. The predicted solidification sequence started with the precipitation of primary M_2B boride, followed by ferrite/austenite formation and a final eutectic reaction resulting in M_3B_2 borides. A good correlation with the simulations and final microstructure was found. The abrasive wear resistance was investigated with the dry sand/rubber wheel test and the results indicated an outstanding performance, similar to the cobalt-based Stellite 1016 alloy. The excellent wear resistance resulted from the presence of a significant amount (about 35 vol%) of hard borides homogeneously dispersed in the microstructure, which was effective at increasing hardness and protecting the duplex matrix against abrasion.
机译:研究了通过喷涂成型添加3 wt%硼改性的超级双相不锈钢的显微组织形成和耐磨性。用热力学模拟作为比较基础,并解释了实验观察到的微观结构,该组织由初级M_2B型硼化物,奥氏体-铁素体基体和低共熔M_3B_2型硼化物组成。预测的凝固序列始于主要的M_2B硼化物的沉淀,然后是铁素体/奥氏体形成和最终的共晶反应,从而生成M_3B_2硼化物。发现与模拟和最终的微观结构具有良好的相关性。用干砂/橡胶轮试验研究了耐磨性,结果表明它具有出色的性能,类似于钴基Stellite 1016合金。优异的耐磨性归因于大量均匀分布在微结构中的硬质硼化物的存在(约35 vol%),这对提高硬度和保护双相基体免受磨损是有效的。

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  • 来源
    《Journal of Materials Research 》 |2016年第19期| 2987-2993| 共7页
  • 作者单位

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

    Departamento de Engenharia de Materials (DEMa), Universidade Federal de Sao Carlos, 13565-905 Sao Carlos, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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