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Laser bending of commercially pure grade 2 titanium alloy plates: mechanisms analysis and characterisation of mechanical properties

机译:商用纯2级钛合金板的激光弯曲:机械分析和机械性能表征

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摘要

The processing of materials has become a specialist field and the industry will continue to grow due to rising costs in labour and raw materials which has forced many automotive industry suppliers to invest heavily in this field. In order to be relevant and competitive in today’s industrial world, companies in South Africa are now forced to dedicate billions of rands in profits to research and development. Metals like titanium are finding favour with automotive and aviation companies in pursuit of savings in fuel consumption. This saving is achieved by reducing weight on aircraft and automobiles yet still meeting acceptable and improved structural integrity. In-depth research into the behaviour of various materials under varying loading conditions is therefore essential. The study on the processing of commercially pure grade 2 titanium alloy plates focuses on the development of process parameters for bending the material using a 4kW Nd: YAG laser to an approximate radius of curvature of 120mm. The resulting mechanical properties of laser formed plates are then compared to those obtained from mechanically formed samples. The titanium parent material was used to benchmark the performance of formed samples. The effect of process parameters on the mechanical properties and structural integrity also formed part of this study. To obtain the bending parameters for laser forming, various combinations of processing speeds and laser powers were used. The line energy is dependent on the power and scanning velocity parameters and these are shown in table 1. The laser power, line energy and scanning velocity were the main parameters controlled in this study and the beam diameter remained unchanged. Residual stress analysis, micro-hardness and fatigue life testing were carried out to analyse mechanical properties and the structural integrity of the plate samples. Microstructural analysis was also done to observe changes in the material as a result of the forming processes. From the results it is evident that laser forming is beneficial to the hardness of titanium but detrimental to the fatigue life at higher line energies. Residual stress analysis showed the amount of stress within the study samples increased with each forming operation. This information was vital in the analysis of the fatigue life of titanium. A fatigue life prediction model was developed from this study and it shed some light on the behaviour of titanium in fatigue testing. The model could be used to predict fatigue life when no fatigue data is available for commercially pure grade 2 titanium alloy plates. In conclusion, this study helped establish parameters that could be used to bend titanium while the analysis of mechanical properties showed the limits of working with this alloy.
机译:材料加工已成为一个专业领域,由于人工和原材料成本的上涨,该行业将继续增长,这迫使许多汽车行业供应商在该领域进行大量投资。为了在当今的工业世界中具有相关性和竞争力,南非的公司现在被迫将数十亿兰特的利润用于研发。追求节省燃料消耗的钛等金属正受到汽车和航空公司的青睐。通过减轻飞机和汽车的重量,同时仍满足可接受的和改进的结构完整性,可以实现这种节省。因此,深入研究各种材料在不同负载条件下的行为至关重要。商业纯2级钛合金板材的加工研究着重于使用4kW Nd:YAG激光将材料弯曲至大约120mm曲率半径的工艺参数的开发。然后将激光成型板的最终机械性能与从机械成型样品中获得的机械性能进行比较。钛母材料用于基准测试成型样品的性能。工艺参数对机械性能和结构完整性的影响也构成了这项研究的一部分。为了获得用于激光成形的弯曲参数,使用了加工速度和激光功率的各种组合。线能量取决于功率和扫描速度参数,如表1所示。激光功率,线能量和扫描速度是本研究中控制的主要参数,光束直径保持不变。进行了残余应力分析,显微硬度和疲劳寿命测试,以分析板样品的机械性能和结构完整性。还进行了微结构分析,以观察成型过程中材料的变化。从结果可以明显看出,激光成形有利于钛的硬度,但有害于较高线能量下的疲劳寿命。残余应力分析表明,研究样品中的应力量随每次成型操作而增加。该信息对于分析钛的疲劳寿命至关重要。通过这项研究开发了疲劳寿命预测模型,该模型为疲劳测试中钛的行为提供了一些启示。当没有疲劳数据可用于商业纯2级钛合金板时,该模型可用于预测疲劳寿命。总而言之,这项研究帮助建立了可用于弯曲钛的参数,而机械性能分析显示了使用这种合金的局限性。

著录项

  • 作者

    Mjali Kadephi Vuyolwethu;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
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