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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Investigation, modeling, and optimization of surface roughness in micro-milling of graphite electrodes
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Investigation, modeling, and optimization of surface roughness in micro-milling of graphite electrodes

机译:石墨电极微铣削表面粗糙度的研究、建模和优化

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摘要

Abstract The control of surface roughness in micro-milling of graphite electrodes is needed for achieving high quality of electro-discharge machined molds. The tool deflection in micro-milling of ultrafine grain graphite is drastically lower in comparison to micro-milling of hardened tool steel due to lower cutting forces. Therefore, micro-end-mills with higher aspect ratios are often used. In this paper, the influence of cutting parameters, such as depth of cut, step over, feed rate, and spindle speed at different workpiece inclination angles on surface roughness was investigated experimentally. The experiments were carried out according to Taguchi’s 34 factorial design of experiments. The effects of surface angle and four micro-machining parameters on the surface quality were analyzed using main effect plots and response surfaces, whereas the analysis of variance (ANOVA) was utilized to determine highly significant parameters. Polynomial regression was utilized to formulate mathematical models of the performance characteristics in terms of selected micro-machining parameters. In addition, developed models were further interfaced with the evolutionary algorithm based on differential evolution (DE) to obtain optimum process parameters for minimizing the surface roughness in micro-milling of graphite.
机译:摘要 石墨电极微铣削的表面粗糙度控制是实现高质量电火花加工模具所必需的。由于切削力较低,与淬硬工具钢的微铣削相比,超细晶粒石墨微铣削中的刀具挠度大大降低。因此,通常使用具有较高纵横比的微型立铣刀。本文通过实验研究了不同工件倾角下切削深度、跨距、进给率、主轴转速等切削参数对表面粗糙度的影响。实验根据田口的34因子实验设计进行。采用主效应图和响应面分析了表面角度和4个微加工参数对表面质量的影响,并利用方差分析(ANOVA)确定显著性参数。利用多项式回归来根据选定的微加工参数制定性能特征的数学模型。此外,将开发的模型与基于微分进化(DE)的进化算法进一步对接,以获得最优的工艺参数,以最小化石墨微铣削的表面粗糙度。

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