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Feed speed scheduling method for parts with rapidly varied geometric feature based on drive constraint of NC machine tool

机译:基于数控机床驱动约束的几何特征快速变化的零件进给速度调度方法

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As the existence of rapidly varied geometric feature and during the NC manufacturing process of this kind of parts, the actual moving speed of the workbench of the NC machine tool cannot reach the feed speed set in the NC program timely due to the drive constraint of NC machine tool. Furthermore, the machine tool would vibrate violently with the drive constraint when employing the constant machining parameter to process the parts with rapidly varied geometric feature, which seriously restricts the improvement of processing this kind of parts with high quality and high efficiency. In order to manufacture such parts with high quality and high efficiency, a sub-regional processing method with variable machining parameters is proposed. Firstly, the generation mechanism of the machining error is studied, and its mathematical model is built. Then the change rule of the machining error influenced by the curvature and the NC programmed feed speed is found out. Finally, taking the drive constraint and the machining error requirement into account, the relationship between the programmed feed speed and the curvature is established, and the corresponding programmed feed speeds to different curvatures are obtained. Taking the NC machining of the edge line of spiral microstrip antenna, which is an equiangular spiral, for example, the experiment results show that compared with the machining result with constant machining parameter, the maximum machining error of the sub-regional processing method with variable machining parameters decreases by 35.51% and the average value of the machining error decreases by 46.65%. For another example, the clover rose line is machined and the processing quality is also improved. This study proves that the method distributing the programmed feed speeds based on the curvature variation can improve the machining precision and ensure processing efficiency, and provides an effective method to manufacture parts with rapidly varied geometric feature.
机译:由于存在快速变化的几何特征,并且在此类零件的NC制造过程中,由于NC的驱动约束,数控机床工作台的实际移动速度无法及时达到NC程序中设置的进给速度。机床。此外,当采用恒定的加工参数来加工具有快速变化的几何特征的零件时,机床将在驱动约束下剧烈振动,这严重限制了高质量和高效率地加工这种零件的改进。为了高质量和高效率地制造这种零件,提出了一种具有可变加工参数的分区处理方法。首先研究了加工误差的产生机理,建立了数学模型。然后找出受曲率和NC编程进给速度影响的加工误差的变化规律。最后,考虑到驱动约束和加工误差要求,建立了编程进给速度和曲率之间的关系,并获得了针对不同曲率的相应编程进给速度。以螺旋微带天线的边线(等角螺旋)的数控加工为例,实验结果表明,与恒定加工参数的加工结果相比,变分区域加工方法的加工误差最大。加工参数降低35.51%,加工误差平均值降低46.65%。再例如,对三叶草玫瑰线进行加工,并且加工质量也得到改善。研究证明,基于曲率变化分布程序化进给速度的方法可以提高加工精度,保证加工效率,为制造几何特征快速变化的零件提供了有效的方法。

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