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An exploration of laser-sustained plasma interactions with titanium substrates during nitriding without direct irradiation by the laser.

机译:探索氮化过程中激光与钛基材的激光持续等离子体相互作用,而无需激光直接照射。

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摘要

Laser-sustained plasma (LSP) is plasma which can be sustained indefinitely by a laser beam away from any potentially interacting surfaces. LSPs can be sustained at steady state by balancing power input through inverse bremsstrahlung absorption with loss through radiation (continuous and line), convection, and conduction. For many years, plasma has been considered a negative influence in laser materials processing, disrupting the beam path and distorting radiation prior to the beam reaching the surface. New research indicates that LSP can be an opportunity for metallurgical surface treatments and the deposition of coatings with an improvement in properties over conventional coating methods.;For the first time, the LSP was used to nitride surfaces independently of the associated laser beam and the resulting specimens were examined to gain new insights into the effects of laser plasmas on surface modification processes. A titanium plate was placed parallel to and at a radial distance from an LSP, rather than perpendicular to it, as is the typical geometry for laser processing. During the exposure of the substrate to the LSP, the process was observed via a charge-coupled device (CCD) camera. The processed substrates were then examined visually, by scanning electron microscopy, energy dispersive x-ray spectroscopy, focused ion beam, transmission electron microscopy, and x-ray diffraction to elucidate the morphological and microstructural features that are characteristic of this processing method.;Results indicated that an LSP is a powerful tool for heating surfaces and simultaneously introducing activated gas species into the melt. The nitrided surfaces exhibited complex and uncommon morphologies, including faceted titanium nitride crystals, which had not been produced by conventional laser nitriding. The underlying microstructure demonstrated that LSP can generate layers similar to those produced by conventional laser nitriding, but to a much greater depth. This characteristic structure exhibited four distinct layers with gradated nitrogen contents ranging from titanium nitride at the surface to the base titanium metal.;A timeline for the evolution of these metallurgical transformations was developed based on process monitoring and the materials characterization. These observations also led to a new understanding of the influence of plasma on the laser nitriding process. New methods for observing LSP-material interactions without additional contributions from the laser beam itself were effectively employed. The viability of LSP nitriding as a surface modification process and as a tool for future research on plasma-substrate interactions is discussed.
机译:激光维持等离子体(LSP)是可以被激光束无限期地远离任何可能相互作用的表面维持的等离子体。通过平衡通过反向致辐射吸收输入的功率与通过辐射(连续和线性),对流和传导引起的损耗,可以使LSP保持在稳态。多年以来,等离子体一直被视为对激光材料加工的负面影响,它会破坏光束路径并在光束到达表面之前扭曲辐射。新的研究表明LSP可以作为冶金表面处理和涂层沉积的机会,与常规涂层方法相比,其性能得到改善。;首次将LSP用来独立于相关的激光束和所产生的氮化物表面对样品进行了检查,以了解激光等离子体对表面改性过程的影响。将钛板平行于LSP放置并与LSP保持径向距离,而不是垂直于LSP,这是激光加工的典型几何形状。在基板暴露于LSP的过程中,通过电荷耦合器件(CCD)摄像机观察到该过程。然后通过扫描电子显微镜,能量色散X射线光谱,聚焦离子束,透射电子显微镜和X射线衍射对加工后的基材进行目测,以阐明该加工方法的特征形态和微观结构特征。指出LSP是加热表面并同时将活性气体引入熔体的强大工具。氮化的表面表现出复杂且不常见的形态,包括多面氮化钛晶体,这是常规激光氮化所无法产生的。潜在的微观结构表明,LSP可以产生类似于常规激光氮化所产生的层,但是深度更大。这种特征结构表现出四个不同的层,其氮含量从表面的氮化钛到基体钛金属不等。;基于工艺监测和材料表征,为这些冶金转变的发展制定了时间表。这些观察结果还使人们对等离子体对激光氮化工艺的影响有了新的认识。有效地采用了观察LSP-材料相互作用的新方法,而没有来自激光束本身的额外贡献。讨论了LSP氮化作为表面改性过程以及作为等离子体与底物相互作用的未来研究工具的可行性。

著录项

  • 作者

    Black, Amber Nalani.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Materials Science.;Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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