Tailoring the Microstructure using Quenching and Partitioning Processing in a Commercial Mn-Si-Cr Spring Steel to Improve Tensile Properties

IF 2.6 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES Arabian Journal for Science and Engineering Pub Date : 2024-04-05 DOI:10.1007/s13369-024-08888-9
Mohammad Masoumi, Dany Michell Andrade Centeno, Edwan Anderson Ariza Echeverri
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Abstract

This study explores a novel approach to quenching and partitioning (Q&P) heat treatment applied to AISI 9260 spring steel, comprising Fe-0.65C-1.58Mn-1.05Si-0.41Cr (wt.%). Our research focuses on balancing strength and ductility through optimized Q&P pathways, leading to a diverse microstructure that includes martensite, bainite, carbide, and retained austenite. Advanced X-ray diffraction and scanning electron microscopy techniques were employed to analyze the complexities of this microstructure. A key aspect of this study is the precise control of partitioning temperature and time, crucial for modulating lattice distortion and dislocation density within martensitic and bainitic structures. Optimal partitioning temperature promotes carbon distribution into austenite, tempering lattice distortions, and dislocation densities. Concurrently, carbide precipitation and segregation contribute to the refinement of the bainite phase. The sample quenched at 125 °C and partitioned at 350 °C (Q&P-125/350) demonstrates notable mechanical properties: a yield strength of 950 ± 15 MPa, an ultimate tensile strength of 1710 ± 15 MPa, and an elongation of approximately 9.7%. These results are partly attributed to the effect of silicon in preventing cementite coarsening and the effective distribution of carbide. Our findings highlight the potential of Q&P heat treatment in developing tailored microstructures with enhanced mechanical properties in steel, without relying on costly alloying elements. This approach presents new avenues for the design and application of high-performance materials.

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在商用锰硅铬弹簧钢中使用淬火和分层工艺调整微观结构以改善拉伸性能
本研究探索了一种新的淬火和分区(Q&P)热处理方法,该方法适用于 AISI 9260 弹簧钢,其成分为 Fe-0.65C-1.58Mn-1.05Si-0.41Cr(重量百分比)。我们的研究重点是通过优化 Q&P 途径平衡强度和延展性,从而获得包括马氏体、贝氏体、碳化物和残余奥氏体在内的多样化微观结构。我们采用了先进的 X 射线衍射和扫描电子显微镜技术来分析这种微观结构的复杂性。这项研究的一个关键方面是精确控制分割温度和时间,这对调节马氏体和贝氏体结构中的晶格畸变和位错密度至关重要。最佳的分割温度可促进碳分布到奥氏体、回火晶格畸变和位错密度。同时,碳化物的析出和偏析有助于贝氏体相的细化。在 125 °C 下淬火并在 350 °C 下分割的样品(Q&P-125/350)具有显著的机械性能:屈服强度为 950 ± 15 MPa,极限抗拉强度为 1710 ± 15 MPa,伸长率约为 9.7%。这些结果部分归功于硅在防止雪明碳酸盐粗化和碳化物有效分布方面的作用。我们的研究结果凸显了 Q&P 热处理在开发具有增强钢材机械性能的定制微结构方面的潜力,而无需依赖昂贵的合金元素。这种方法为高性能材料的设计和应用提供了新的途径。
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来源期刊
Arabian Journal for Science and Engineering
Arabian Journal for Science and Engineering MULTIDISCIPLINARY SCIENCES-
CiteScore
5.70
自引率
3.40%
发文量
993
期刊介绍: King Fahd University of Petroleum & Minerals (KFUPM) partnered with Springer to publish the Arabian Journal for Science and Engineering (AJSE). AJSE, which has been published by KFUPM since 1975, is a recognized national, regional and international journal that provides a great opportunity for the dissemination of research advances from the Kingdom of Saudi Arabia, MENA and the world.
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