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首页> 外文期刊>Journal of Materials Science >Evolution of microstructure and mechanical properties during quenching and tempering of ultrahigh strength 0.3C Si-Mn-Cr-Mo low alloy steel
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Evolution of microstructure and mechanical properties during quenching and tempering of ultrahigh strength 0.3C Si-Mn-Cr-Mo low alloy steel

机译:超高强度0.3C Si-Mn-Cr-Mo低合金钢淬火和回火过程中的组织和力学性能演变

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摘要

Effects of quenching and tempering treatments on the development of microstructure and mechanical properties of ultrahigh strength 0.3C Si-Mn-Cr-Mo low alloy steel were investigated. Samples were austenitized at 1123-1323 K for 2400 s and oil quenched (OQ) to produce mixed microstructures. Tempering was carried out at 473-773 K for 2-3 h. Phase transformation temperatures were measured using dilatometer. The microstructures were characterized using optical and scanning electron microscope. SEM-EDS analysis was carried out to determine the type and size of non-metallic inclusions. Volume percent of retained austenite was measured by X-ray diffraction technique. Hardness, tensile properties, and impact energies were also determined for all heat treated conditions. Fractography of impact specimens were done using stereomicroscope and SEM. The results showed that newly developed steel exhibited peak hardness, yield strength, and tensile strength of about 600 HV, 1760 MPa, and 1900 MPa, respectively, when OQ from 1203 K and tempered in between 473 and 573 K, combined with adequate ductility and impact toughness. Decrease in hardness and strength was observed with increasing tempering temperature whereas the impact energy was stable up to 623 K, however, impact energy was found to decrease above 632 K due to temper martensite embrittlement.
机译:研究了淬火和回火处理对超高强度0.3C Si-Mn-Cr-Mo低合金钢组织和力学性能发展的影响。样品在1123-1323 K下奥氏体化2400 s,并进行油淬(OQ)以产生混合的微观结构。在473-773 K下回火2-3小时。使用膨胀计测量相变温度。使用光学和扫描电子显微镜表征微观结构。进行了SEM-EDS分析,以确定非金属夹杂物的类型和尺寸。通过X射线衍射技术测量残留奥氏体的体积百分比。还确定了在所有热处理条件下的硬度,拉伸性能和冲击能。使用立体显微镜和SEM对冲击试样进行分形。结果表明,当1203 K的OQ在473和573 K之间回火时,新开发的钢分别具有约600 HV,1760 MPa和1900 MPa的峰值硬度,屈服强度和抗拉强度,并具有足够的延展性和塑性。冲击韧性。随着回火温度的升高,硬度和强度均降低,而冲击能在623 K以下均保持稳定,但是,由于回火马氏体脆化,发现冲击能降低至632 K以上。

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