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Optimization of Machining Parameters for Surface Roughness in End Milling of Magnesium AM60 Alloy

机译:镁AM60合金立铣中表面粗糙度的加工参数优化。

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Objective: The present work is aimed to find an optimum combination of cutting parameters to achieve low surface roughness in end milling of magnesium AM60 with TiN coated carbide tool under dry conditions. Methods: Design of Experiments (DOE) with Response Surface Methodology (RSM) using Box-Behnken design and the regression equations are used to find the optimal combinations of cutting parameters to achieve low surface roughness. The developed RSM model was experienced through Analysis of Variance (ANOVA). An ANOVA analysis was performed to indicate the control of three machining parameters on the surface roughness. Findings: The cutting parameters assessed were spindle speed, depth of cut and feed rate have the greatest effect on the success of the milling operation. Confirmation experiments with the optimum combinations of cutting parameters were carried out in order to explain the efficiency of the response surface design concepts. From ANOVA results, the feed rate was found to be most significant factor affects surface roughness of milled surface. Feed rate, depth of cut and spindle speed affects the surface roughness by 76.18%, 2.94% and 1.99% respectively. It can be fulfilled that RSM method is effective and efficient method to optimize milling parameters for low surface roughness. Applications: Magnesium (Mg) is now emerging as a popular metal for replacing Aluminum (Al) and finding applications in automobile and aerospace industries where fine finishing of the machined component is ultimate requirements to achieve a product quality.
机译:目的:目前的工作旨在找到最佳的切削参数组合,以在干燥条件下,使用TiN涂层硬质合金刀具对AM60镁合金进行端面铣削时,实现低表面粗糙度。方法:采用Box-Behnken设计,通过响应表面方法学(RSM)设计实验(DOE),并使用回归方程式找到最佳切削参数组合,以实现低表面粗糙度。通过方差分析(ANOVA)体验了开发的RSM模型。进行ANOVA分析以表明对表面粗糙度的三个加工参数的控制。结果:所评估的切削参数是主轴转速,切削深度和进给速度,对铣削操作的成功影响最大。为了说明响应面设计概念的效率,进行了最佳切削参数组合的确认实验。根据方差分析结果,进给速度是影响铣削表面粗糙度的最重要因素。进给速度,切削深度和主轴转速分别影响表面粗糙度76.18%,2.94%和1.99%。可以满足的是,RSM方法是一种优化和优化低表面粗糙度铣削参数的有效方法。应用范围:镁(Mg)如今已成为替代铝(Al)的流行金属,并在汽车和航空航天工业中找到了应用,在这些行业中,对机加工部件进行精加工是达到产品质量的最终要求。

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