Investigation of chatter prediction in end milling using morphological studies on aluminum alloy (Al6061)

Q3 Physics and Astronomy
J. Shaik, R. R. Mutra, A. Galal, Sinivasa R Tanneeru
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引用次数: 0

Abstract

Future machine tools have to be highly powerful systems to maintain the needed intellectual performance and stability. The machine tool systems such as Spindle/Tool-holder/Tool assembly are necessary to be optimized for their functionality or cutting performance to meet the productivity and accessibility requirements of the user. Prediction of the dynamic behavior at the spindle tool-tip is, therefore, an important criterion for assessing the machining stability of a machine tool at the design stage. In commercial practice, the machine tool system is extensively influenced by the dynamic rigidity of the spindle system. In this work, a realistic dynamic high-speed spindle/milling tool holder/tool system model is elaborated based on rotor dynamics predictions. Using the finite element modeling with the Timoshenko beam theory, the frequency response at the tool-tip has arrived initially. Further, the numerical model is validated with 3D ANSYS and experimental modal testing. The theoretical stability lobe diagram (SLD) depends on the stiffness and damping properties of the cutting tool and distinguishes the stable and unstable cutting conditions. The mechanism of chatter formation is investigated experimentally during the end milling of Aluminum alloy (Al6061) by two different techniques. Experimental cutting tests are conducted at different depths of cuts, the corresponding vibration signals and cutting samples are examined using the Scanning electronic microscope (SEM) and optical microscope. These studies provide a detailed investigation to predict the stable and unstable cutting zones at different machining conditions.
铝合金(Al6061)端面铣削颤振预测的形态学研究
未来的机床必须是功能强大的系统,以保持所需的智能性能和稳定性。主轴/刀架/刀具总成等机床系统需要针对其功能或切削性能进行优化,以满足用户的生产力和可达性要求。因此,预测主轴刀具尖端的动态行为是在设计阶段评估机床加工稳定性的重要标准。在商业实践中,机床系统受到主轴系统动态刚度的广泛影响。本文在转子动力学预测的基础上,建立了一个真实的高速主轴/铣刀座/刀具系统动力学模型。利用Timoshenko梁理论的有限元建模,初步得到了刀尖处的频率响应。并利用三维有限元分析软件ANSYS和实验模态试验对数值模型进行了验证。理论稳定性波瓣图(SLD)取决于切削工具的刚度和阻尼特性,并区分稳定和不稳定的切削条件。采用两种不同的铣削工艺对铝合金(Al6061)端面铣削过程中的颤振形成机理进行了实验研究。在不同的切削深度下进行了实验切削试验,使用扫描电子显微镜(SEM)和光学显微镜检测了相应的振动信号和切削样品。这些研究为预测不同加工条件下的稳定和不稳定切削区提供了详细的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Noise and Vibration Worldwide
Noise and Vibration Worldwide Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
1.90
自引率
0.00%
发文量
34
期刊介绍: Noise & Vibration Worldwide (NVWW) is the WORLD"S LEADING MAGAZINE on all aspects of the cause, effect, measurement, acceptable levels and methods of control of noise and vibration, keeping you up-to-date on all the latest developments and applications in noise and vibration control.
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