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Cutter/Workpiece Engagement Feature Extraction from Solid Models for End Milling

机译:从立铣刀的实体模型中提取刀具/工件啮合特征

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摘要

Accurate process modeling requires the calculation of cutter/workpiece engagement (CWE) geometry. This is challenging when the geometry of the workpiece is changing unpredictably as is the case for most machined components of moderate complexity. Solid modelers are increasingly being considered as a computational engine for performing these calculations. This is largely due to increased robustness and computing efficiency that is evolving within this technology. The vast majority of reported research using solid modelers focuses on the domain of 2{sup}(1/2) D machining with flat end mills. While significant there remain restrictions in the types of in-process workpiece geometry that can be processed with these approaches. In particular, they assume a constant axial engagement for a connected set of tool paths. This assumption cannot be made when the initial workpiece geometry is nonrectangular prismatic stock, when multiple setups are machined and when tool changes introduce tools of different diameters. In these cases the depth of engagement can vary over a single rotation of the cutter even though there is no axial feed motion. In this paper a solid modeling based solution is presented for calculating CWE geometry when multiple setups and tool changes are considered. Orthogonal setups and flat end mills are assumed so as to preclude cutter engagement on inclined workpiece faces. Intersections between a semi-cylinder representing the cutting tool and the workpiece are performed so as to generate the CWE geometry. Cutter Engagement Features (ceF) are used to characterize this geometry. Several classes of ceFs are defined to support this approach. The process of identifying ceFs is presented as a feature extraction problem. Algorithms for ceF extraction and parametrization are provided in this paper and validated using a test part. This is a new application for features which have traditionally been used to define final part geometry or in-process geometry between material removal steps. The results obtained validate the extraction algorithms presented. This work also extends the capabilities of solid modeling techniques for calculating CWE geometry.
机译:准确的过程建模需要计算刀具/工件啮合(CWE)几何形状。当工件的几何形状发生不可预测的变化时,这是具有挑战性的,就像大多数中等复杂度的机加工部件一样。越来越多地将实体建模器视为执行这些计算的计算引擎。这很大程度上是由于该技术内不断发展的鲁棒性和计算效率所致。使用实体建模器的绝大多数报道研究都集中在使用平底铣刀进行2 {sup}(1/2)D加工领域。尽管很重要,但是可以使用这些方法处理的过程中工件几何形状的类型仍然存在限制。特别是,对于一组相连的刀具路径,它们假定恒定的轴向啮合。当初始工件几何形状为非矩形棱柱形坯料,进行多种设置的加工以及换刀引入了不同直径的刀具时,无法做出此假设。在这些情况下,即使没有轴向进给运动,啮合深度也会在切刀的单次旋转中变化。在本文中,提出了一种基于实体建模的解决方案,用于在考虑多种设置和工具更换的情况下计算CWE几何形状。假定采用正交设置和平立铣刀,以防止刀具在倾斜的工件表面上啮合。进行代表切削工具的半圆柱体与工件之间的相交,以生成CWE几何形状。切刀啮合特征(ceF)用于表征此几何形状。定义了几类ceF以支持此方法。 ceFs的识别过程是一个特征提取问题。本文提供了用于ceF提取和参数化的算法,并使用测试部分对其进行了验证。这是特征的新应用,这些特征传统上用于定义材料去除步骤之间的最终零件几何形状或过程中几何形状。获得的结果验证了提出的提取算法。这项工作还扩展了用于计算CWE几何的实体建模技术的功能。

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