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首页> 外文期刊>Steel Research International >A Study on the Microstructure and Fatigue Properties of Welding Joints in Vibration‐Assisted Laser Welding Process
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A Study on the Microstructure and Fatigue Properties of Welding Joints in Vibration‐Assisted Laser Welding Process

机译:振动辅助激光焊接过程中焊接接头微观结构和疲劳性能研究

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摘要

> A vibration‐assisted laser welding experiment of 4.5?mm industrial pure iron is conducted to focus on the influences of vibration parameters on microstructure, fatigue fracture, and fatigue life. The studies show that the microstructure of the joint is optimized under the condition of 1186?HZ vibration frequency and 36.1?m?s ?2 vibration acceleration; it is also found that a suitable microvibration process can enhance the penetration depth of the joints, reduce the number of columnar crystals, and homogenize the microhardness. In high‐cycle fatigue experiments, the base material (BM) produces fatigue fracture only under the fatigue load of 52% R m , the fatigue source area under vibration is at the corner of the fracture or at the inside of the weld seam; a functional consequence is that the vibration can increase the fatigue load strength by 1–3 percentage points, and the fatigue life can be increased by 0.8–1.5 multiples. The microvibration can effectively improve the fatigue performance and increase the fatigue life.
机译: <第XML:ID =“SRIN201900548-SEC-0001”> > 振动辅助激光焊接试验为4.5?MM工业纯铁,专注于振动参数对微观结构,疲劳骨折和疲劳寿命的影响。研究表明,关节的微观结构在1186Ω·赫兹振动频率的条件下进行了优化,36.1?M?s ?2 振动加速;还发现合适的微纤维化过程可以增强关节的渗透深度,减少柱状晶体的数量,并均质化微硬度。在高循环疲劳实验中,基材(BM)仅在52%的疲劳负荷下产生疲劳裂缝 R m ,振动下的疲劳源区位于骨折或焊缝内部的拐角处;功能后果是,振动可以将疲劳负载强度提高1-3个百分点,并且疲劳寿命可以增加0.8-1.5倍数。微纤维率可以有效地提高疲劳性能并增加疲劳寿命。

著录项

  • 来源
    《Steel Research International》 |2020年第4期|共9页
  • 作者单位

    Shanghai Collaborative Innovation Center of Laser Advanced Manufacturing TechnologyShanghai University of Engineering ScienceShanghai 201620 China;

    Shanghai Collaborative Innovation Center of Laser Advanced Manufacturing TechnologyShanghai University of Engineering ScienceShanghai 201620 China;

    Shanghai Collaborative Innovation Center of Laser Advanced Manufacturing TechnologyShanghai University of Engineering ScienceShanghai 201620 China;

    Shanghai Collaborative Innovation Center of Laser Advanced Manufacturing TechnologyShanghai University of Engineering ScienceShanghai 201620 China;

    Shanghai Collaborative Innovation Center of Laser Advanced Manufacturing TechnologyShanghai University of Engineering ScienceShanghai 201620 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 金属学与金属工艺;
  • 关键词

    fatigue performances; laser welding; microstructures; vibrations;

    机译:疲劳性能;激光焊接;微观结构;振动;

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