Effects of Edge Radius and Coating Thickness on the Cutting Performance of AlCrN-Coated Tool

IF 1.9 4区 工程技术 Q2 Engineering
Mohammad Malekan, Charlotte F. Ilvig, Ramin Aghababaei
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Abstract

High-speed machining is a practical way to attain high productivity with lower costs. Under this condition, the tool geometry needs to be optimized to sustain high cutting forces and temperatures. The sharpness of the cutting edge and the coating thickness (CT) are two key parameters that affect the tool’s performance. While a sharp edge eases the cutting process, it causes a high stress concentration, which increases the wear rate and eventual edge fracture. In this study, we use a combination of finite element simulations and experimental testing to evaluate the effects of CT ( 1–3 μm), edge radius (\(r_{\beta }\) , 6–15 μm), and coefficient of friction (\(\upmu = 0 - 0.2\)) on the stress distribution at the cutting edge. Our simulations showed that the larger the CT, the higher the stress magnitude inside the coating, but the lower the maximum stress depth percentile. Considering an industrial case of cutting steel workpieces using AlCrN-coated tungsten carbide tools under given cutting parameters, our simulations suggested an optimum CT of 3 μm. By manufacturing a series of milling tools with different CTs and edge radii, we validated the simulation results using a set of well-controlled milling experiments. Finally, the edge radius should be selected considering the size of rake/flank angle mainly to control stress distribution over the cutting edge.

Abstract Image

边缘半径和涂层厚度对铝铬镍涂层刀具切削性能的影响
高速加工是实现高生产率和低成本的一种实用方法。在这种情况下,需要优化刀具的几何形状,以承受高切削力和温度。切削刃的锋利程度和涂层厚度 (CT) 是影响刀具性能的两个关键参数。锋利的刃口虽然能简化切削过程,但却会造成高应力集中,从而增加磨损率,最终导致刃口断裂。在这项研究中,我们结合有限元模拟和实验测试,评估了 CT(1-3 μm)、刃口半径((r_{\beta }\ ),6-15 μm)和摩擦系数((\upmu = 0 - 0.2\ ))对切削刃应力分布的影响。我们的模拟结果表明,CT 越大,涂层内部的应力大小越高,但最大应力深度百分位数越低。考虑到在给定切削参数下使用 AlCrN 涂层硬质合金刀具切削钢制工件的工业案例,我们的模拟结果表明最佳 CT 为 3 μm。通过制造一系列具有不同 CT 和刃口半径的铣刀,我们用一组控制良好的铣削实验验证了模拟结果。最后,选择刃口半径时应考虑前角/侧角的大小,主要是为了控制切削刃上的应力分布。
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来源期刊
CiteScore
4.10
自引率
10.50%
发文量
115
审稿时长
3-6 weeks
期刊介绍: The International Journal of Precision Engineering and Manufacturing accepts original contributions on all aspects of precision engineering and manufacturing. The journal specific focus areas include, but are not limited to: - Precision Machining Processes - Manufacturing Systems - Robotics and Automation - Machine Tools - Design and Materials - Biomechanical Engineering - Nano/Micro Technology - Rapid Prototyping and Manufacturing - Measurements and Control Surveys and reviews will also be planned in consultation with the Editorial Board.
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