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首页> 外文期刊>Optics and Lasers in Engineering >Statistical analysis and optimization of process parameters in Ti6A14V laser cladding using NdiYAG laser
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Statistical analysis and optimization of process parameters in Ti6A14V laser cladding using NdiYAG laser

机译:NdiYAG激光对Ti6A14V激光熔覆工艺参数的统计分析和优化

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摘要

The process parameters of laser cladding have great effect on the clad geometry and dilution. This investigation focuses on the influence of laser power (400-600 W), scanning speed (500-700 mm/min) and powder feed rate (30-60 rev/min) on the shape factor and the cladding-bead geometry (layer width, layer height and molten depth) with regard to injecting Ti6A14V (TC4) powder on TC4 substrate. The experimental design technique, central composite design (CCD) and response surface methodology (RSM) are used to build the mathematical model. By means of the developed model tested by the analysis of variance (ANOVA) method, the relationship between process parameters and output responses and the interaction among the process parameter are analyzed and discussed in detail. The analysis results indicate that powder feed rate is the dominant factor on the width and height of cladding coating while laser scanning speed has the strongest effect on molten depth of substrate. Finally, the validation results show that the calculated values are in good agreement with measured responses within the allowable range of cladding parameters being used. This makes it possible to acquire a good parameter combination for dilution control. Based on the results of optimization, it is observed that the low level of laser power and high level of laser scanning speed can produce cladding coatings with good quality when powder feed rate is around the center value.
机译:激光熔覆的工艺参数对熔覆的几何形状和稀释有很大影响。这项研究的重点是激光功率(400-600 W),扫描速度(500-700 mm / min)和送粉速度(30-60 rev / min)对形状因数和包层磁珠几何形状(层)的影响宽度,层高和熔融深度),以在TC4基板上注入Ti6A14V(TC4)粉末。实验设计技术,中央复合设计(CCD)和响应面方法(RSM)用于建立数学模型。通过方差分析法(ANOVA)测试的开发模型,对过程参数与输出响应之间的关系以及过程参数之间的相互作用进行了详细分析和讨论。分析结果表明,送粉速度是影响熔覆层宽度和高度的主要因素,而激光扫描速度对熔覆深度的影响最大。最后,验证结果表明,所计算的值与所使用的包层参数的允许范围内的测量响应非常吻合。这使得获得用于稀释控制的良好参数组合成为可能。根据优化结果,可以发现,当粉末进料速度接近中心值时,低激光功率和高激光扫描速度可以生产出质量良好的熔覆涂层。

著录项

  • 来源
    《Optics and Lasers in Engineering》 |2012年第7期|p.985-995|共11页
  • 作者

    Yuwen Sun; Mingzhong Hao;

  • 作者单位

    Key Laboratory for Precision and Non-Traditional Machining Technology of the Ministry of Education, Dalian University of Technology, Dalian 716024, China;

    Key Laboratory for Precision and Non-Traditional Machining Technology of the Ministry of Education, Dalian University of Technology, Dalian 716024, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    laser cladding; response surface methodology (RSM); titanium alloy;

    机译:激光熔覆;响应面方法(RSM);钛合金;

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