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Geometrical theory of cutting stock with torus end mills in five-axis CNC machining and its applications in machining simulation

机译:五轴CNC加工中环形磨机切割坯的几何理论及其在加工模拟中的应用

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摘要

We have established the geometric theory of cutting stock with flat end mills in five-axis CNC machining and an accurate and efficient approach to 3D geometric modeling of un-deformed chips in this machining (Chang et al. Comput Aided Des 88:42–59, 2017). The work has laid a theoretical foundation for geometrical and physical simulation for five-axis milling. However, fillet and ball end mills are more popular than flat end mills. The equations of the instantaneous cutting edges of a fillet end mill are more complicated in the geometric theory, and the boundary of the area covered by the cutting edges is more difficult to determine. Therefore, this article is to formulate the instantaneous cutting edges and their critical points in five-axis milling and to illustrate how to use the boundary construction diagram to determine the boundary with two examples of the geometric and the physical simulations. This work is verified with the valid results of the examples, and the results indicate that this model can take into account the errors of cutter and machine tool. Therefore, the geometric theory is viable, and its application on the five-axis milling simulation is feasible for high-performance machining.
机译:我们在五轴CNC加工中建立了用平端铣刀的平坦磨机的几何理论,以及这种加工中的无变形芯片的3D几何建模的准确和有效的方法(Chang等人。计算辅助DES 88:42-59 ,2017)。这项工作为五轴铣削的几何和物理模拟奠定了理论基础。然而,圆角和球形铣刀比平底铣刀更受欢迎。圆角终端铣刀的瞬时切削刃的方程在几何理论中更复杂,并且切削刃覆盖的区域的边界更难以确定。因此,本文是在五轴研磨中配制瞬时切削刃及其临界点,并说明如何使用边界施工图来确定几何和物理模拟的两个示例的边界。使用示例的有效结果验证了此工作,结果表明此模型可以考虑刀具和机床的错误。因此,几何理论是可行的,其对五轴研磨模拟的应用对于高性能加工是可行的。

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