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首页> 外文期刊>Materials Science and Engineering >Synergistic effect of austenitizing temperature and hot plastic deformation strain on the precipitation behavior in novel HSLA steel
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Synergistic effect of austenitizing temperature and hot plastic deformation strain on the precipitation behavior in novel HSLA steel

机译:奥氏体温度和热塑性变形应变对新型HSLA钢析出行为的协同效应

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摘要

Examination of thin foils of specimens with various austenitizing conditions by transmission electron microscopy revealed randomly homogeneous precipitation in the ferrite for each experimental condition. Though no interphase precipitation was found in the present study, two types of random precipitation morphologies were identified in the ferrite matrix. One was randomly and homogeneously precipitated carbides of smaller size ( < 10 nm), and the other was randomly precipitated carbides of larger size (10-30 nm). Transmission electron microscopy results provided evidence that both types of precipitation carbides could be associated with the supersaturation of microalloying elements in the ferrite and austenite, respectively. A higher austenitizing temperature treatment can lead to more microalloying elements dissolving in the austenite such that many tiny carbides precipitation at the low isothermal holding temperature, which is believed to effectively strengthen the ferrite. Vickers hardness data revealed that, in specimens austenitized at 1200 ℃ and deformed at 900 ℃ with strains of 10% and 30%, the ranges of hardness distribution were 250-360 HV 0.1 and 310-400 HV 0.1, respectively. For specimens austenitized at 1000 ℃ and deformed at 900 ℃ with strains of 10% and 30%, the ranges of hardness distribution were 220-250 HV 0.1 and 220-260 HV 0.1, respectively. Therefore, the average Vickers hardness increased with the austenitizing temperature and deformation strain. However, a wider range of hardness distribution occurred in specimens that underwent treatment at higher austenitizing temperatures. The wider Vickers hardness distribution reflects non-uniform precipitation in each ferrite grain.
机译:通过透射电子显微镜检查具有各种奥氏体化条件的样品薄箔,发现在每种实验条件下,铁素体中均一地随机沉淀。尽管在本研究中未发现相间析出,但在铁素体基体中鉴定出两种类型的随机析出形态。一种是较小尺寸(<10 nm)的随机且均匀沉淀的碳化物,另一种是较大尺寸(10-30 nm)的随机沉淀的碳化物。透射电子显微镜的结果提供了证据,这两种沉淀碳化物可能分别与铁素体和奥氏体中的微合金元素的过饱和有关。较高的奥氏体化温度处理可导致更多的微合金元素溶解在奥氏体中,从而使许多微小的碳化物在较低的等温保持温度下析出,据信可有效地增强铁素体。维氏硬度数据表明,在1200℃奥氏体化和900℃变形,应变为10%和30%的试样中,硬度分布范围分别为250-360 HV 0.1和310-400 HV 0.1。对于在1000℃下奥氏体化和在900℃下变形,应变为10%和30%的试样,硬度分布范围分别为220-250 HV 0.1和220-260 HV 0.1。因此,平均维氏硬度随着奥氏体化温度和变形应变而增加。但是,在较高奥氏体化温度下进行处理的试样中出现了较宽的硬度分布范围。较宽的维氏硬度分布反映了每个铁素体晶粒中的不均匀析出。

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  • 来源
    《Materials Science and Engineering 》 |2015年第15期| 145-154| 共10页
  • 作者单位

    Department of Energy Engineering, National United University, Miaoli 36003, Taiwan,Department of Materials Science and Engineering, National Taiwan University, Taipei 10617, Taiwan;

    Department of Energy Engineering, National United University, Miaoli 36003, Taiwan;

    Department of Materials Science and Engineering, National Taiwan University, Taipei 10617, Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hardness; Austenitizing; TEM; Nano-sized carbide;

    机译:硬度;奥氏体化TEM;纳米碳化物;

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