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Multi-objective optimisation of single point incremental sheet forming using Taguchi-based grey relational analysis

机译:基于Taguchi的灰色关联分析的单点增量板成形多目标优化

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摘要

Incremental forming is a potential process for sheet metal prototyping and low volume production applications. This paper presents the application of Taguchi-based grey relational analysis for optimisation of multiple performance characteristics in single point incremental forming (SPIF) process. In this study, tool diameter, feed rate, shape of the geometry and step depth have been considered as the process parameters with the objective of optimising the maximum wall angle (φ_(max)) and arithmetic mean surface roughness (R_a) simultaneously. The incremental forming experiments have been performed on computer numerical control (CNC) milling machine as per Taguchi L_9(3~4) orthogonal array. The analysis of variance (ANOVA) has been used to understand the effect of process parameters on individual response variables. Further, the grey relational grade has been calculated using the grey relational approach for simultaneous optimisation maximum wall angle and surface roughness. The ANOVA analysis indicated that the step depth is most influential factor on grey relational grade followed by feed rate, tool diameter and shape of the geometry.
机译:增量成型是钣金原型设计和小批量生产应用的潜在工艺。本文介绍了基于Taguchi的灰色关联分析在单点增量成形(SPIF)过程中优化多个性能特征的应用。在这项研究中,刀具直径,进给速度,几何形状和台阶深度已被视为工艺参数,目的是同时优化最大壁角(φ_(max))和算术平均表面粗糙度(R_a)。根据田口L_9(3〜4)正交阵列,在计算机数控铣床上进行了增量成形实验。方差分析(ANOVA)已用于了解过程参数对各个响应变量的影响。此外,已经使用灰色关联方法计算了灰色关联等级,以同时优化最大壁角和表面粗糙度。方差分析表明,步深是影响灰色关联度的最大因素,其次是进给速度,刀具直径和几何形状。

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