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Application of bismuth for solidification structure refinement and properties enhancement in as-cast high-speed steels

机译:铋在铸造高速钢凝固组织细化和性能增强中的应用

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摘要

In order to exhibit good all-round performance the impact toughness enhancement of as-cast high-speed steels is obligatorily needed. In general, different methods are used commercially to achieve cast structure refinement and, as a consequence, their properties are improved. Introduction into the melt of inoculant particles or surface-active additions is among most beneficial. However, the effect of modifying additions in as-cast high-speed steels has been studied insufficiently. In fact, a restricted number of modifiers is used for structure and properties improvement in the as-cast high-speed steels compared to the common cast alloys. In the present work several kinds of alloys including tungsten-molybdenum high-speed steels of M2 and T30 types and low-alloy tungsten-free 1.1C-5Mo-1.7V high-speed steel were melted to investigate the effect of bismuth on their structures and properties. It has been found that additions of bismuth produce a very fine cast structure and affect the shape of the matrix grains and the morphology of the eutectic carbides as well as the redistribution of the main alloying elements of high-speed steels between solid solution and eutectic carbides. The microstructural changes, induced by bismuth during solidification, are explained by the surface activity of bismuth, which segregates to liquid/solid interface, significantly blocking dendrite growth in the direction along certain crystallographic planes. It has been shown that during eutectic solidification, carbides are also exposed to the barrier effect of bismuth being surrounded in the melt by this element. The main metallographic features of the modified cast structure alongside with the purifying effect produced by bismuth are retained after full heat treatment affecting the final mechanical properties of as-cast high-speed steels. As a result, bismuth significantly increases impact toughness and wear resistance of as-cast high-speed steels but decreases their red hardness.
机译:为了表现出良好的全方位性能,必须快速提高铸态高速钢的冲击韧性。通常,在商业上使用不同的方法来实现铸造结构的细化,结果,它们的性能得以改善。将孕育剂颗粒或表面活性添加剂引入熔体是最有益的。然而,对铸态高速钢中添加剂的改性效果的研究还不够充分。实际上,与普通铸造合金相比,有限数量的改性剂用于铸态高速钢的组织和性能改善。在本工作中,熔化了M2和T30型钨钼高速钢和低合金无钨1.1C-5Mo-1.7V高速钢等几种合金,以研究铋对其组织的影响。和属性。已经发现,添加铋会产生非常精细的铸造结构,并影响基体晶粒的形状和共晶碳化物的形态,以及高速钢的主要合金元素在固溶体和共晶碳化物之间的重新分布。 。铋在凝固过程中引起的微观结构变化是由铋的表面活性解释的,铋的表面活性偏析至液/固界面,从而显着阻止了沿某些晶面方向的枝晶生长。已经表明,在共晶凝固期间,碳化物还暴露于铋被该元素包围在熔体中的阻挡作用。经过充分热处理,影响铸态高速钢的最终机械性能,改性铸件结构的主要金相学特征以及铋产生的净化作用得以保留。结果,铋显着提高了铸态高速钢的冲击韧性和耐磨性,但降低了其红色硬度。

著录项

  • 来源
    《ISIJ international》 |2005年第9期|p.1297-1306|共10页
  • 作者

    Alexander S. CHAUS;

  • 作者单位

    Department of Foundry, Faculty of Materials Science and Technology, Slovak University of Technology, 24 J. Bottu Street, 917 24 Trnava, Slovak Republic.;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 黑色金属材料;
  • 关键词

    high-speed steel; bismuth; modifying effect; structure; properties;

    机译:高速钢;铋;变质效果;组织;性能;
  • 入库时间 2022-08-18 00:05:16

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