Microstructural effects on impact-sliding wear mechanisms in D2 steels: The roles of matrix hardness and carbide characteristics

材料科学 碳化物 微观结构 变形(气象学) 分层(地质) 冶金 复合材料 基质(化学分析) 修边 耐磨性 可塑性 古生物学 生物 计算机科学 俯冲 构造学 操作系统
作者
Mertcan Kaba,Halil İbrahim Filiz,Zeyuan Cui,Murat Baydoğan,Hüseyin Çi̇menoǧlu,A.T. Alpas
出处
期刊:Wear [Elsevier BV]
卷期号:538-539: 205224-205224 被引量:16
标识
DOI:10.1016/j.wear.2023.205224
摘要

This study investigates the wear micromechanisms of D2 steels under impact-sliding conditions, offering insights into their performance when used in applications such as trimming dies for high-strength steel sheets where they undergo plastic deformation and chipping. Two D2 steel samples, both with a bulk hardness of 59.7 HRC but different matrix hardnesses and carbide distributions, are tested by using an impact-sliding wear test rig at Hertzian contact pressures exceeding 2 GPa. The sample with a softer matrix exhibits wear primarily through delamination caused by plastic deformation. This initiates cracks at the matrix/primary carbide interface, leading to material loss in the form of large chips. In contrast, the steel with a harder matrix shows reduced wear due to its resistance to plastic deformation. Initially, wear occurs through the fracture of primary carbides. However, with prolonged loading, the matrix begins to soften, adopting a wear mechanism similar to the D2 steel with softer matrix. Notably, smaller primary carbides are associated with improved wear resistance by limiting the initiation sites for cracks, especially at the matrix/primary carbide interface. This understanding enables the selection and design of heat treatments to optimize D2 steel microstructure, thus improving resistance to impact-sliding wear damages observed in processes like trimming.
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