金属热处理 ›› 2025, Vol. 50 ›› Issue (6): 153-163.DOI: 10.13251/j.issn.0254-6051.2025.06.024

• 工艺研究 • 上一篇    下一篇

回火温度对A514CrQ齿条钢组织与性能的影响

赵广迪1, 臧喜民2, 刘志超1, 井玉安1   

  1. 1.辽宁科技大学 材料与冶金学院, 辽宁 鞍山 114051;
    2.沈阳工业大学 材料科学与工程学院, 辽宁 沈阳 110870
  • 收稿日期:2024-12-28 修回日期:2025-03-01 出版日期:2025-06-25 发布日期:2025-07-08
  • 通讯作者: 臧喜民,教授,博士,E-mail: zangxm@sut.edu.cn
  • 作者简介:赵广迪(1989—),男,副教授,博士,主要研究方向为金属材料组织性能调控,E-mail:gdzhao12s@alum.imr.ac.cn。
  • 基金资助:
    国家自然科学基金(52174317,52474362);辽宁省教育厅面上项目(JYTMS20230943)

Influence of tempering temperature on microstructure and mechanical properties of A514CrQ rack steel

Zhao Guangdi1, Zang Ximin2, Liu Zhichao1, Jing Yu'an1   

  1. 1. School of Materials and Metallurgy, University of Science and Technology Liaoning, Anshan Liaoning 114051, China;
    2. School of Materials Science and Engineering, Shenyang University of Technology, Shenyang Liaoning 110870, China
  • Received:2024-12-28 Revised:2025-03-01 Online:2025-06-25 Published:2025-07-08

摘要: 研究了回火温度(350~750 ℃)对A514CrQ齿条钢显微组织演变、室温拉伸性能和-40 ℃低温韧性的影响。结果表明,随回火温度升高,平均有效晶粒尺寸从10.3 μm增大至29.1 μm。经350~450 ℃回火后获得回火屈氏体,在550 ℃及以上回火得到回火索氏体;当回火温度升至750 ℃,渗碳体颗粒显著粗化。随回火温度从350 ℃升至650 ℃,抗拉强度从1084.0 MPa下降至869.5 MPa,但升至750 ℃时又小幅回升至883.9 MPa;而屈服强度从968.5 MPa下降至685.6 MPa,伸长率从12.8%增大到23.2%。当回火温度从350 ℃升高至650 ℃,-40 ℃冲击吸收能量达到峰值107.7 J,继续升高至750 ℃,冲击吸收能量基本持平。结合显微组织、断口形貌和裂纹扩展行为分析,回火温度对室温拉伸性能和低温韧性的影响主要与有效晶粒尺寸、渗碳体析出、α相的软化及二次裂纹的形成有关。

关键词: 齿条钢, 回火温度, 组织, 拉伸性能, 低温韧性

Abstract: Influence of tempering temperature (350-750 ℃) on microstructure evolution, room temperature tensile properties, and -40 ℃ low-temperature toughness of A514CrQ rack steel was studied. The results indicate that as the tempering temperature increases, the average effective grain size increases from 10.3 μm to 29.1 μm. Tempered troostite is obtained after tempering at 350-450 ℃, and tempered sorbite is obtained after tempering at 550 ℃ and above. When the tempering temperature is raised to 750 ℃, cementite particles are significantly coarsened. As the tempering temperature increases from 350 ℃ to 650 ℃, the tensile strength decreases from 1084.0 MPa to 869.5 MPa, but slightly rebounds to 883.9 MPa at 750 ℃. While the yield strength decreases linearly from 968.5 MPa to 685.6 MPa, and the elongation increases from 12.8% to 23.2%. When the tempering temperature increases from 350 ℃ to 650 ℃, the impact absorbed energy reaches the maximum of 107.7 J, but as the tempering temperature further increases to 750 ℃, the impact absorbed energy is almost unchanged. Based on the analysis of microstructure, fracture morphology, and crack propagation behavior, the influence of tempering temperature on room temperature tensile properties and low-temperature toughness is mainly related to the effective grain size, cementite precipitation, softening of α phase and formation of secondary cracks.

Key words: rack steel, tempering temperature, microstructure, tensile properties, low-temperature toughness

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