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Structural and Micromechanical Properties of Nd:YAG Laser Marking Stainless Steel (AISI 304 and AISI 316)

机译:Nd:YAG激光打标不锈钢(AISI 304和AISI 316)的结构和微机械性能

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摘要

The purpose of this study is to examine the microstructure and micromechanical properties of pulsed-laser irradiated stainless steel. The laser marking was conducted for AISI 304 and AISI 316 stainless steel samples through a Nd:YAG (1064 nm) laser. The influence of process parameters such as the pulse repetition rate and scanning speed have been considered. The microstructures of obtained samples were analyzed using confocal optical microscopy (COM). The continuous stiffness measurements (CSM) technique was applied for nanoindentional hardness and elastic modulus determination. The phase compositions of obtained specimens were characterized by X-ray diffraction (XRD) and confirmed by Raman spectroscopy. The results revealed that surface roughness is directly related to overlapping distance and the energy provided by a single pulse. The hardness of irradiated samples changes significantly with the indentation depth. The instrumental hardness H and elastic modulus E drop sharply with the rise of the indentation depth. Thus, the hardness enhancement can be observed as the indentation depth varies between 100–1000 nm for all exanimated samples. The maximum values of H and E were evaluated for the region of small depths (100–200 nm). The XRD results reveal the presence of iron and chromium oxides due to irradiation, which indicates a surface hardening effect.
机译:这项研究的目的是检查脉冲激光辐照不锈钢的显微组织和微机械性能。通过Nd:YAG(1064 nm)激光器对AISI 304和AISI 316不锈钢样品进行了激光打标。已经考虑了诸如脉冲重复率和扫描速度之类的工艺参数的影响。使用共聚焦光学显微镜(COM)分析获得的样品的微观结构。连续刚度测量(CSM)技术用于确定纳米硬度和弹性模量。通过X射线衍射(XRD)表征获得的样品的相组成,并通过拉曼光谱法确认。结果表明,表面粗糙度与重叠距离和单个脉冲提供的能量直接相关。辐照样品的硬度随压痕深度而显着变化。仪器硬度H和弹性模量E随着压痕深度的增加而急剧下降。因此,对于所有动画样品,当压痕深度在100–1000 nm之间变化时,可以观察到硬度增加。在较小深度(100-200 nm)的区域内评估H和E的最大值。 XRD结果表明由于辐照而存在氧化铁和氧化铬,这表明表面硬化作用。

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