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Optimization of Friction Stir Processing Parameters for the Development of Cu-W Surface Composite

机译:Cu-W表面复合材料开发摩擦搅拌加工参数的优化

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The present work focusses on improving the surface wear resistance of commerical pure copper by reinforcing tungsten particles through friction stir processing. Particularly this work adopts Taguchi's experimental design to achieve minimum wear rate for Copper-Tungsten surface composite by optimizing the process parameters. The rotational and traverse speeds of tool and volume fraction of reinforcement (i.e. tungsten) are the chosen parameters for minimizing the wear rate. Taguchi L9 orthogonal array was used to design the experiments. The surfaces of the processed specimens were investigated by optical microscopy for the distribution of tungsten particles and sliding wear behavior was studied by conducting pin-on-disc method. It was observed from the optical micrographs that the reinforcement evenly dispersed in the processed zone. The measured hardness was 85% higher than the base metal for the specimen exhibited minimum wear rate. The effects of all three parameters on wear rate were studied. The minimum wear rate was achieved by using rotational and traverse speeds of tool, 1200rpm and 60mm/min, respectively. The amount of reinforcement required to achieve maximum wear resistance was 10%. Variance analysis showed that amount of reinforcement played a key role in determining the properties than the other parameters.
机译:本作者通过摩擦搅拌加工增强钨颗粒来改善商业纯铜的表面耐磨性。特别是这项工作采用Taguchi的实验设计,通过优化工艺参数来实现铜钨表面复合材料的最小磨损率。钢筋的工具和体积分数的旋转和横向速度(即钨)是用于最小化磨损率的所选参数。 Taguchi L9正交阵列用于设计实验。通过光学显微镜研究加工样品的表面,用于通过导电销盘法研究钨颗粒的分布和滑动磨损行为。从光学显微照片观察到加强件均匀地分散在加工区中的光学显微照片。测量的硬度比样品的贱金属高85%,表现出最小磨损率。研究了所有三个参数对磨损率的影响。通过使用工具,1200rpm和60mm / min的旋转和横向速度来实现最小磨损率。实现最大耐磨性所需的增强量为10%。方差分析表明,增强量在确定比其他参数的性质中起着关键作用。

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