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Modeling of surface topography based on cutting vibration in ball-end milling of thin-walled parts

机译:基于切削振动的薄壁零件切割振动的表面形貌建模

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摘要

Because of the low rigidity of thin-walled parts, the cutting vibration is commonly encountered and has a vital influence on machined surface quality. Theoretical simulation of surface topography is one of the main methods to evaluate and control surface quality in practice. In this paper, a simulation model of surface topography is developed based on cutting edge motion model that incorporates the dynamics of thin-walled parts milling system. The theoretical model used to describe the trajectory of cutting edge takes tool vibration and workpiece vibration into account. Then, the influence of system vibration on surface topography is investigated. Particularly, a new method is proposed in this paper to predict the texture interval, texture distribution, and residual height for different milling areas by identifying the dynamic characteristics of thin-walled parts. In addition, the validity of surface topography model is conducted by experiment. The results show that the simulated topography is consistent with the experimental topography, and the model is proved to be able to predict roughness accurately.
机译:由于薄壁部件的低刚性,通常遇到切割振动并对机加工表面质量具有重要影响。表面形貌的理论模拟是在实践中评估和控制表面质量的主要方法之一。在本文中,基于切削刃运动模型开发了表面形貌的仿真模型,该模型包括薄壁部件研磨系统的动态。用于描述切削刃轨迹的理论模型考虑了工具振动和工件振动。然后,研究了系统振动对表面形貌的影响。特别地,在本文中提出了一种新方法,以通过识别薄壁部件的动态特性来预测不同铣削区域的纹理间隔,纹理分布和残余高度。此外,表面形貌模型的有效性是通过实验进行的。结果表明,模拟地形与实验形貌一致,并证明该模型能够精确地预测粗糙度。

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