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Curved profiles machining of Ti6Al4V alloy through WEDM: investigations on geometrical errors

机译:Ti6Al4V合金通过WEDM加工的弯曲曲线:对几何误差的研究

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Great biocompatibility and superior mechanical properties of titanium alloys (Ti6Al4V) stimulate the use of this material frequently in biomedical, defence, and aeronautical industries. In these applications, the end parts generally have complex curved profiles. Through conventional means of machining, complex profiles with high dimensional accuracy are not easily achievable due to difficult-to-cut nature of Ti6Al4V. Wire Electric Discharge Machining (WEDM) is a promising alternative to cut the complex features like angular and curved features. In this research, convex and concave profiles are machined in Ti6Al4V through WEDM. The influence of four machining parameters, namely servo voltage, wire feed, pulse On- and Off-time, over the geometrical accuracies of convex and concave profiles along with corner radii have been comprehensively investigated. The L27orthogonal array was taken as the design of the experiment, and the results are evaluated in terms of statistical (ANOVA and signal-to-noise ratio) and microscopic morphology by Scanning Electron Microscopy (SEM). Optimized combination of machining parameters are sought capable of resulting in minimum geometric deviations (0.250% overcut in convex and 0.236% undercut in concave profiles) and corner radii of 0.106?mm. Moreover, the SEM analysis has confirmed that the discharge energy and erosion phenomenon significantly affect the profile accuracy as well as the surface integrity. In addition to optimized parameters the provision of wire offset, ranging within 0.169–0.173?mm, can further mitigate the geometric deviations of the actual machined profiles from the designed geometries.
机译:钛合金(Ti6Al4V)的大生物相容性和优异的机械性能刺激了生物医学,防御和航空行业的经常使用这种材料。在这些应用中,末端部件通常具有复杂的弯曲轮廓。通过常规的加工方法,由于Ti6Al4V的难以切割性质,具有高尺寸精度的复杂曲线不容易实现。电线放电加工(WEDM)是一种有前途的替代方案,可以切割成角度和弯曲特征等复杂的特征。在该研究中,凸和凹轮廓在Ti6Al4V通过WEDM中加工。已经全面研究了四种加工参数,即伺服电压,送丝,脉冲和关闭时间的影响和关闭的影响以及转角半径的几何精度。将L27正交阵列作为实验的设计,通过扫描电子显微镜(SEM),根据统计(ANOVA和信噪比)和微观形态来评估结果。寻求优化的加工参数组合能够导致最小几何偏差(凸形凸面的0.250%过度,凹形轮廓中的0.236%底切),角落半径为0.106Ωmm。此外,SEM分析证实放电能量和侵蚀现象显着影响了轮廓精度以及表面完整性。除了优化的参数之外,提供线偏移,在0.169-0.173Ω·mm之外,可以进一步减轻实际加工型材从设计的几何形状的几何偏差。

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