先进高强钢显微组织和力学性能的无损磁评价

A. Martínez-de-Guerenu, F. van den Berg, M. Aarnts, C. Celada-Casero, D. Jorge-Badiola
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引用次数: 0

摘要

由于汽车工业对钢板产品的机械性能要求越来越高,在过去的几十年里,能够满足这些机械要求的多相钢的使用一直在增长。因此,这些钢种的无损特性已成为世界范围内一个活跃的研究方向。在本工作中,利用磁滞回BH回路对工业冷轧和退火DP800(双相)和CP800(复杂相)钢在不同位置、不同加工温度和不同线圈长度的带材样品进行了磁性表征。此外,对样品进行详细的EBSD表征,可以确定各种微量成分的比例,即铁素体、贝氏体、马氏体和残余奥氏体。最后,通过对所有样品的硬度和拉伸试验进行力学表征。对这三个方面的所有结果都进行了仔细的分析,以提取它们之间可能的关系。在所有这些特征之间已经发现了清晰的一对一线性关系,即使在机械/磁性能和微观结构方面已经获得了很大的变化。具体来说,当贝氏体体积分数约为15% ~ 75%时,屈服强度和抗拉强度与矫顽力场Hc呈线性相关。因此,如果对这些具有多相显微组织的钢种进行先前的校准,矫顽力场可能成为预测机械性能的候选参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-destructive magnetic evaluation of microstructure and mechanical properties of advanced high-strength steels
Because of more demanding mechanical properties in sheet steel products in the automotive industry, the use of multi-phase steels, capable of complying with those mechanical requirements, has been growing along the last decades. The non-destructive characterization of these steel grades, therefore, has become an active research line worldwide. In the present work, the magnetic characterization by magnetic hysteresis BH loops of various strip samples of industrially cold rolled and annealed DP800 (dual phase) and CP800 (complex phase) steels at several positions with varying processing temperatures in the coil length has been performed. In addition, a detailed EBSD characterization of the samples has allowed determining the fraction of the various microconstituents, namely, ferrite, bainite, martensite and retained austenite. Finally, the mechanical characterization has been done through hardness and tensile tests on all the samples. All the results regarding these three aspects have been analysed carefully to extract likely relationships among them. Clear one-to-one linear correlations have been found between all these features, even though large variations in mechanical/magnetic properties and microstructures have been attained. Specifically, for volume fractions of bainite approximately between 15% to 75%, the yield and tensile strengths show a linear correlation with the coercive field, Hc. Thus, the coercive field may be a candidate to become a parameter for the prediction of the mechanical properties if a previous calibration is performed on these steel grades with multi-phase microstructures.
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