A 2.1 GPA TRIPLE-PHASE SPRING STEEL

Liang Zhongyang, W. Zhou, Xuan Wang, D. Northwood, Cheng Liu
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引用次数: 1

Abstract

The key way of achieving sustainability of a product is to design a manufacturing process that increases the mechanical properties of traditional materials, e.g. steel, whilst also increasing processing efficiency, and diminishing energy consumption. A novel process has been developed that allows for a traditional spring steel (60Si2Mn) to be produced with a high level of strength (tensile strength is over 2100 MPa, bending strength is 4100 MPa, yield strength is 1700 MPa as well as hardness of 59 HRC), also retaining reasonable ductility on an industrial scale. It is shown that a triple-phase microstructure comprising lenticular prior martensite, nano-scaled needle/lath-like bainitic ferrite and film retained austenite, is obtained. The excellent combination of strength and ductility is attributed to a synergistic multi-phase strengthening effect. The nano-scaled structure exhibits a good balance between strength and toughness. The presence of prior martensite provides the kinetics of subsequent nano-scaled bainitic transformation by bainitic laths nucleating at the martensite–austenite interfaces. This design methodology potentially broadens the application of spring steel to components that experience more demanding service environments, such as heavy loads.
2.1 gpa三相弹簧钢
实现产品可持续性的关键方法是设计一种制造工艺,提高传统材料(如钢铁)的机械性能,同时提高加工效率,减少能源消耗。开发了一种新工艺,可以生产出具有高强度的传统弹簧钢(60Si2Mn)(拉伸强度超过2100 MPa,弯曲强度为4100 MPa,屈服强度为1700 MPa,硬度为59 HRC),并且在工业规模上保持合理的延展性。结果表明,该合金具有透镜状马氏体、纳米针状/板条状贝氏体铁素体和膜状保留奥氏体三相组织。强度和延性的优异结合归功于协同的多相强化效应。纳米结构在强度和韧性之间表现出良好的平衡。马氏体的存在为随后在马氏体-奥氏体界面处由贝氏体板条成核的纳米尺度贝氏体转变提供了动力学。这种设计方法有可能将弹簧钢的应用范围扩大到经历更苛刻的服务环境(如重载)的组件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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