首页> 外文会议>International Conference on Engineering Materials, Metallurgy and Manufacturing >Multi-objective Optimization Using Taguchi's Loss Function-Based Principal Component Analysis in Electrochemical Discharge Machining of Micro-channels on Borosilicate Glass with Direct and Hybrid Electrolytes
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Multi-objective Optimization Using Taguchi's Loss Function-Based Principal Component Analysis in Electrochemical Discharge Machining of Micro-channels on Borosilicate Glass with Direct and Hybrid Electrolytes

机译:用直接和杂交电解质对硼硅酸盐玻璃微通道电化学放电加工中基于损失功能的主要成分分析的多目标优化

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Machining of hard and brittle materials like borosilicate glass has imposed challenges due to its low machinability. Among various non-traditional machining methods, electrochemical discharge machining (ECDM) or spark-assisted chemical engraving (SACE) is proved as a potential method to machine such low machinable and non-conducting engineering materials. ECDM combines the features of electric discharge machining (EDM) and electrochemical machining (ECM) to machine electrically non-conducting materials. In the present study, direct (NaOH) and hybrid (NaOH + KOH) electrolytes were used to machine micro-channels on borosilicate glass with in-house developed prototype constant velocity tool-feed ECDM experimental set-up. The experiments were conducted based on L_9 orthogonal array with electrolyte concentration, voltage and duty factor as control factors. The overcut (OC) and heat-affected zones (HAZ) were considered as responses. Taguchi's loss function-based principal component analysis (PCA) was utilized for simultaneous optimization of responses. Analysis of variance (ANOVA) was performed, and electrolyte concentration was found as the most significant factor for both the cases. Confirmation tests with three replications were conducted at optimum factor levels and validated experimental results.
机译:硼硅酸盐玻璃等硬质和脆性材料的加工造成挑战由于其低机械性。在各种非传统加工方法中,证明了电化学放电加工(ECDM)或火花辅助化学雕刻(SACE)作为机器机械如此低的可加工和非导电工程材料的潜在方法。 ECDM将电气放电加工(EDM)和电化学加工(ECM)的特点与机电非导电材料相结合。在本研究中,使用直接(NaOH)和杂交(NaOH + KOH)电解质在硼硅酸盐玻璃上的微通道与内部开发的原型恒速工具 - 进料ECDM实验设置。基于L_9正交阵列进行实验,具有电解质浓度,电压和占子因子作为对照因子。过度(OC)和热影响的区域(HAZ)被认为是响应。 Taguchi的损失函数的主要成分分析(PCA)用于同时优化响应。进行差异分析(ANOVA),并发现电解质浓度是这种情况的最显着因素。在最佳因子水平下进行三种复制的确认试验和验证的实验结果。

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