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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Postprocessor algorithm and feedrate optimization for nine-axis milling machine tool with twin cutters
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Postprocessor algorithm and feedrate optimization for nine-axis milling machine tool with twin cutters

机译:具有双刀具的九轴铣床工具的后处理器算法和进给优化

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摘要

Twin-tool synchronous milling is a new method for blade machining which can improve the machining efficiency obviously. It can be realized on a nine-axis machine tool with two cutters. However, the kinematic analysis and the feedrate planning are more difficult, due to the more complex structure than the traditional five-axis machine tool. In this paper, an efficient postprocessor algorithm is developed and feedrate optimization method is proposed to realize twin-tool synchronous milling. Based on a brief structure and kinematic chain analysis, the generalized kinematic model is built. Considering the characteristics that the A-axis is shared by two cutters in the nine-axis machine tool, the mathematical formulas of the motion coordinates and rotary angles are derived, which can simultaneously transform the location and orientation vectors of the two cutters into numerically controlled (NC) codes. Meanwhile, the feedrate is planned to maintain the simultaneous cutting with the two cutters, even though the displacements between adjacent cutting contact points on the opposite blade surfaces are unequal. Then, the feedrate optimization strategy is proposed to guarantee the continuity of the cutting speed; the saturation limit for each servo motor is also considered. Furthermore, the NC codes for machining a typical turbine blade are generated with the developed postprocessor algorithm, then the velocity and acceleration of each axis at different cutter-contact-point are calculated. The validity is demonstrated with simulation and experiments on a self-developed nine-axis machine tool.
机译:双工具同步铣削是刀片加工的新方法,可以显着提高加工效率。它可以在具有两个刀具的九轴机床上实现。然而,由于比传统的五轴机床更复杂,运动分析和进给速率规划更困难。本文开发了一种高效的后处理器算法,提出了进给优化方法,实现双工具同步铣削。基于简要的结构和运动链分析,建立了广义的运动模型。考虑到九轴机床中的两个切割器共用的特性,导出了运动坐标和旋转角度的数学公式,其可以同时将两个切割器的位置和方向向量转换为数字控制(NC)代码。同时,规划进给率以保持与两个切割器的同时切割,即使相邻刀片表面上的相邻切割接触点之间的位移是不相等的。然后,提出了进给优化策略以保证切割速度的连续性;还考虑了每个伺服电机的饱和极限。此外,利用开发的后处理器算法产生用于加工典型涡轮机叶片的NC码,然后计算不同切割点处的每个轴的速度和加速度。在自开发的九轴机床上对仿真和实验进行了证明了有效性。

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