王朝阳, 黄俏梅, 秦荣斌, 丁志敏. 超声滚压载荷对25CrMo4车轴钢表面强化特征的影响规律[J]. 制造技术与机床, 2024, (1): 48-52. DOI: 10.19287/j.mtmt.1005-2402.2024.01.006
引用本文: 王朝阳, 黄俏梅, 秦荣斌, 丁志敏. 超声滚压载荷对25CrMo4车轴钢表面强化特征的影响规律[J]. 制造技术与机床, 2024, (1): 48-52. DOI: 10.19287/j.mtmt.1005-2402.2024.01.006
WANG Chaoyang, HUANG Qiaomei, QIN Rongbin, DING Zhimin. Influence of the intensity of ultrasonic rolling on surface strengthening features of 25CrMo4 axle steel[J]. Manufacturing Technology & Machine Tool, 2024, (1): 48-52. DOI: 10.19287/j.mtmt.1005-2402.2024.01.006
Citation: WANG Chaoyang, HUANG Qiaomei, QIN Rongbin, DING Zhimin. Influence of the intensity of ultrasonic rolling on surface strengthening features of 25CrMo4 axle steel[J]. Manufacturing Technology & Machine Tool, 2024, (1): 48-52. DOI: 10.19287/j.mtmt.1005-2402.2024.01.006

超声滚压载荷对25CrMo4车轴钢表面强化特征的影响规律

Influence of the intensity of ultrasonic rolling on surface strengthening features of 25CrMo4 axle steel

  • 摘要: 为了提高列车车轴的使用寿命,研究分析了不同强化处理后试样的表面形貌及其粗糙度、表层组织结构、表面硬度及其深度和表面残余应力,探索了滚压处理和不同载荷超声滚压处理对25CrMo4车轴钢表面强化特征的影响规律。结果表明:与磨削试样相比,滚压和超声滚压处理均改善了试样的表面粗糙度,其中低载荷超声滚压试样的表面粗糙度最低,达到了0.2 μm;高载荷超声滚压试样的表层获得的塑性变形层最深;高载荷超声滚压试样的表面硬度值最大,达到了370 HV0.1,并形成了深度为150 μm左右的硬化层;滚压试样和超声滚压试样表面均产生了较高的残余压应力。滚压和超声滚压处理使25CrMo4车轴钢表面硬度及硬化层深度的增加、产生较高的残余压应力和表面粗糙度的降低均会对其疲劳性能的提高产生有利的影响,特别是超声滚压处理的效果更佳。但过高的载荷会使车轴钢的表面粗糙度升高,从而对其疲劳性能的提高产生不利的影响。

     

    Abstract: In order to improve the service life of train axle. The work aims to research the surface morphology and roughness, surface hardness and its depth, surface residual stress and surface microstructure of the specimen after different treatment. The influence of rolling and ultrasonic rolling treatment with different loads on the surface strengthening characteristics of 25CrMo4 axle steel was explored. The results show that compared to grinding specimen, both rolling and ultrasonic rolling reinforcement improve the surface flatness of the specimen, the surface roughness of low-load ultrasonic rolling specimen was the lowest, reaching 0.2 μm; After high-load ultrasonic rolling, the plastic deformation layer obtained on the surface of the specimen is the deepest. The surface hardness of high-load ultrasonic rolling specimen is the largest, reaching 370 HV0.1 and forming a hardened layer with a depth of about 150 μm. Both the surface of the rolling specimen and the ultrasonic rolling specimen produce high residual compressive stress. Conclusion: rolling and ultrasonic rolling treatment increase the surface hardness and its gradient, produce high residual compressive stress and reduce the surface roughness of 25CrMo4 axle steel, which will have a favorable effect on the improvement of fatigue performance. However, excessive load will increase the axle roughness, which has an adverse impact on the improvement of its fatigue performance.

     

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