频率域和离散时间域中正交车铣工艺的颤动稳定性

Kaveh Rahimzadeh Berenji, Faraz Tehranizadeh, Erhan Budak
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摘要

随着工业界追求更高的质量和效率,多任务机床因其能够在一次装夹中加工出复杂零件而越来越受欢迎。车铣加工是多轴加工的一种,它结合了铣削和车削工艺,通过刀具和工件的同步旋转以及刀具的平移进给来去除材料。车铣加工对于难切削材料制成的大型工件很有优势,但在表面形状误差和加工稳定性方面也存在挑战。由于刀具偏心和工件旋转导致工艺力学和动力学更加复杂,传统的铣削稳定性模型无法预测车铣工艺的稳定性。本研究结合正交车铣工艺的独特特点,提出了一种基于工艺力学和动力学的数学模型,以避免自激颤振。考虑到刀具和工件的同步旋转,采用了一种新颖的时变延迟建模方法。在半离散时域和频域对系统进行了稳定性分析。偏心率和工件速度对稳定性图的影响通过实验进行了演示和验证。结果表明,刀具偏心率和工件速度分别会改变啮合几何形状和再生机制的延迟,从而导致稳定性图发生显著变化。所提出的方法为正交车铣的稳定性提供了一个全面的框架,并为选择工艺条件提供了指导,从而实现稳定的切削并提高生产率。
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Chatter Stability of Orthogonal Turn-Milling Process in Frequency and Discrete-Time Domains
As the industry seeks better quality and efficiency, multitasking machine tools are becoming increasingly popular owing to their ability to create complex parts in one setup. Turn-milling, a type of multi-axis machining, combines milling and turning processes to remove material through simultaneous rotations of the cutter and workpiece with the translational feed of the tool. While turn-milling can be advantageous for large parts made of hard-to-cut materials, it also offers challenges in terms of surface form errors and process stability. Because tool eccentricity and workpiece rotation lead to more complexity in process mechanics and dynamics, traditional milling stability models cannot predict the stability of turn-milling processes. This study presents a mathematical model based on process mechanics and dynamics by incorporating the unique characteristics of the orthogonal turn-milling process to avoid self-excited chatter vibrations. A novel approach was employed to model time-varying delays considering the simultaneous rotation of the tool and workpiece. Stability analysis of the system was performed in both the semi-discrete time and frequency domains. The effects of eccentricity and workpiece speed on stability diagrams were demonstrated and validated through experiments. The results show that the tool eccentricity and workpiece speed alter the engagement geometry and delay in the regeneration mechanism, respectively, leading to significant stability diagram alterations. The proposed approach offers a comprehensive framework for the stability of orthogonal turn-milling and guidance for the selection of process conditions to achieve stable cuts with enhanced productivity.
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