Design and Characterization of a Magnetorheological Damper for Vibration Mitigation during Milling of Thin Components

S. Puma-Araujo, D. Olvera-Trejo, A. Elías-Zúñiga, O. Martínez-Romero, C. Rodríguez
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引用次数: 2

Abstract

The aerospace and automotive industries demand the development of new manufacturing processes. The productivity during machining of very flexible aerospace and automotive aluminum components is limited for self-excited vibrations. New solutions are needed to suppress vibrations that affect the accuracy and quality of the machined surfaces. Rejection of one piece implies an increase in the manufacturing cost and time. This paper is focused on the design, manufacturing and characterization of a magnetorheological damper. The damper was attached to a thin-floored component and a magnetic field was controlled in order to modify the damping behavior of the system. The dynamics of the machining process was developed by considering a three-degree-of-freedom model. This study was experimentally validated with a bull-nose end milling tool to manufacture monolithic parts with thin wall and thin floor. Experimental tests and characterization of the magnetorheological damper permitted to improve the surface finish and productivity during the machining of thin-floored components. A further aim of this paper was to develop a rheological damper by using magnetorheological fluids (MR) to change the thin floor rigidity with voltage. The stability of the milling process was also analytically described considering one, two or three degrees of freedom, using a mathematical integration model based on the Enhanced Multistage Homotopy Perturbation Method (EMHPM).
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薄型零件铣削减振磁流变阻尼器的设计与特性研究
航空航天和汽车工业需要开发新的制造工艺。在非常灵活的航空航天和汽车铝部件的加工过程中,自激振动限制了生产率。需要新的解决方案来抑制影响加工表面精度和质量的振动。拒绝一个零件意味着制造成本和时间的增加。本文主要研究了一种磁流变阻尼器的设计、制造和性能表征。将阻尼器安装在薄板组件上,通过控制磁场来改变系统的阻尼特性。通过考虑三自由度模型,建立了加工过程动力学模型。用牛头端铣刀加工薄壁薄底整体式零件,验证了该方法的有效性。磁流变阻尼器的实验测试和特性允许在薄板部件的加工过程中提高表面光洁度和生产率。本文的进一步目的是利用磁流变液(MR)随电压改变薄底板刚度,从而开发一种流变阻尼器。利用基于增强型多阶段同伦摄动法(EMHPM)的数学积分模型,从一个、两个或三个自由度的角度对铣削过程的稳定性进行了解析描述。
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