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Optimization of complex cutting tools using a multi-dexel based material removal simulation

机译:复杂切削工具的优化使用多索雷基的材料去除仿真

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Multi-dexel based material removal simulations provide a fast and flexible way to compute process forces and tool deflections for milling and turning operations. This allows an advanced process planning including detection of collisions for complex toolpaths. However, using dexel simulations for designing cutting tools has rarely been investigated. Especially the position of individual cutting edges is not considered, because current approaches only subtract the sweep volume of the tool envelop instead of the rake face. This paper presents a new method to design cutting tools using material removal simulations and a detailed tool geometry representation. The discretization of the tool allows an efficient calculation of the engagement conditions of individual cutting edges. The method is used to optimize novel porcupine milling cutters with round indexeble inserts, which produces a geometry analogous to serrated end mills. Based on the calculated forces, the positions of individual indexable inserts are adjusted to minimize the maximum radial force. An optimum has been found that reduces radial force by 12% compared to conventional porcupine milling cutters with squared inserts.
机译:基于多塞尔的材料去除模拟提供了一种快速灵活的方法来计算铣削和转动操作的过程力和刀具偏转。这允许高级过程计划,包括检测复杂刀具路径的冲突。但是,使用糊精模拟用于设计切削工具的设计很少。特别是不考虑各个切割边缘的位置,因为电流接近仅减去工具包围而不是耙面的扫描体积。本文介绍了使用材料拆卸模拟设计切割工具的新方法和详细的工具几何表示。该工具的离散化允许有效地计算各个切削刃的接合条件。该方法用于优化具有圆形探剂插入件的新型豪猪铣刀,其产生与锯齿状端铣刀类似的几何形状。基于计算的力,调节各可分子插入件的位置以最小化最大径向力。已经发现最佳,与具有平方插入件的传统孔覆盖切割器相比,将径向力降低12%。

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