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Residual stress, phase, microstructure and mechanical property studies of ultrafine bainitic steel through laser shock peening

机译:超细贝氏体钢通过激光冲击的残余应力,相,微观结构和力学性能研究

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摘要

The aimed study proposes laser shock peening without a coating of high strength ultrafine bainitic steel to mitigating the fatigue failures for automotive and structural engineering applications. Laser pulse density of 2500 pulses/cm(2) (75% overlapping) was optimised based on the induced residual stresses for employing the wide range of characterisations. The roughness and topographic results showed that surface roughening was controlled by tuning the laser pulse density. The High-Resolution X-ray Diffraction analysis confirmed the lattice misorientation resulting peak shift and the trend towards martensite phase transformations. The electron microscopic micro/nanostructure analyses revealed the grain refinement features such as nano-twins, micro shear bands and shear cells. The work hardening depth analysis indicates the significant enhancement in the mechanical properties. Completely reversed (R = -1) high-cycle fatigue tests extended the lifespan by an average of five times than the untreated. Also, it has potential to repair the structural components effectively.
机译:目前的研究提出了激光冲击喷丸,无需高强度超细贝氏体钢,以减轻汽车和结构工程应用的疲劳故障。基于采用广泛特征的诱导的残余应力,优化了2500脉冲/ cm(2)(2)(75%重叠)的激光脉冲密度。粗糙度和地形结果表明,通过调谐激光脉冲密度来控制表面粗糙化。高分辨率X射线衍射分析证实了晶格错位,从而产生了峰值偏移和马氏体相变的趋势。电子显微镜微/纳米结构分析显示晶粒细化特征,如纳米孪晶,微剪切带和剪切电池。工作硬化深度分析表明了机械性能的显着增强。完全逆转(R = -1)高周期疲劳试验将寿命延伸,平均值比未经治疗的5倍。此外,它有可能有效地修复结构部件。

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