基于整体叶轮典型特性的花键刀具轨迹高效进给速度优化方法

Jianxin Xiao, Bingran Li, Jun Fang, Hui Zhang
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摘要

整体叶轮作为航空发动机涡轮叶片中较为复杂的部件,具有空间复杂、陡度大、畸变大的特点。实际的五轴数控(CNC)加工过程在很大的曲率范围内不受加工质量和精度的影响。因此,如何合理调整路径进给速度以进一步提高效率一直是一个难点。本研究采用计算机辅助制造(CAM)与CNC相结合的方法,针对整体叶轮的典型特性,提出了双非均匀有理b样条曲线的直接插补算法。首先,在CNC中对整体叶轮进行高速区域划分,并在CAM中对整体叶轮的三维特征参数进行划分。其次,在低速区域,根据插值周期和等弧长对特征划分的高低速区域进行离散化;然后,根据二分类结构调整低速区域速度以满足运动约束。最后,通过有限脉冲响应(FIR)滤波器对离散速度进行平滑滤波,使其能够满足机床的动态响应特性。仿真和实验表明,该算法能有效提高整体叶轮进排气边缘的速度和平滑度,有效减少数控系统的计算量,在加工精度要求下提高叶轮的整体加工效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Feedrate Optimization Method for Spline Toolpath Based on Typical Characteristics of Integral Impeller
As a relatively complex part of aero-engine turbine blades, the integral impeller is characterized by complex space, high steepness, and distortion. An actual five-axis computerized numerical control (CNC) machining process unaffected by the machining quality and accuracy of a large curvature range. Consequently, knowing how to reasonably adjust the feed speed of a path in view of further improving the efficiency has always been difficult. This research adopts the method of combining computer-aided manufacturing (CAM) and CNC and proposes a direct interpolation algorithm for the double non-uniform rational B-spline curves based on the typical characteristics of the integral impeller. First, in the CNC, the integral impeller is divided into high-speed regions and three-dimensional characteristic parameters of the integral impeller in CAM. Second, in the low-speed area, the feature-divided high- and low-speed areas are discretized on the basis of the interpolation period and equal arc length. Then, the low-speed area speed is adjusted to meet the kinematic constraints according to the dichotomous configuration. Finally, the discrete speed is smoothly filtered by the Finite Impulse Response (FIR) filter to be able to meet the dynamic response characteristics of the machine tool. Simulations and experiments show that the algorithm can effectively improve the speed and smoothness of the inlet and exhaust edges of the overall impeller, effectively reduce the calculation amount of the numerical control system, and improve the overall machining efficiency of the impeller under the requirements of machining accuracy.
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