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A New Analytical Path-Reshaping Model and Solution Algorithm for Contour Error Pre-Compensation in Multi-Axis Computer Numerical Control Machining

机译:多轴计算机数控加工中的轮廓误差补偿的新分析路径重塑模型和解决方案算法

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Reduction of contour error is crucial for multi-axis computer numerical control (CNC) machining to produce products with required geometric and dimensional accuracy. Although various contour error pre-compensation methods have been developed, few studies are dedicated to five-axis machines when compared with three-axis ones. In this paper, a new contour error pre-compensation method that integrates analytical prediction of contour error, optimal path-reshaping model, and decoupling solution algorithm is proposed for five-axis machining. First, by analyzing the dynamic responses of servo drive to the typical step and ramp signals, linear expression of servo tracking error with respect to the sequence of discrete axis positions is yielded for the prediction of contour error ahead of servo loops. Then, using the Taylor-series expansion and the pseudo-inverse matrix of the Jacobian function, a least-square optimization-based path-reshaping model that implies the satisfaction condition of zero contour error is analytically built. Thus, the complicated nonlinear contour error pre-compensation problem is converted into a simple quadratic programming problem. Concerning the effects of tool orientation reshaping on tool-tip contouring accuracy, a simple yet effective synchronous compensation strategy is subsequently proposed, through which both tool tip and tool orientation contour errors are reduced to near-zero without any iteration. To address the neighbor-dependence of the contour error compensation in adjacent cutter locations, a progressive solution algorithm with linear computational complexity is also briefly presented. Both numerical simulations and laboratorial experiments are conducted to validate the effectiveness of the proposed method.
机译:减少轮廓误差对于多轴计算机数控(CNC)加工至关重要,以生产具有所需的几何和尺寸精度的产品。虽然已经开发了各种轮廓误差预补偿方法,但与三轴相比,很少有研究专用于五轴机器。本文提出了一种新的轮廓误差预补偿方法,其集成了轮廓误差,最佳路径重塑模型和去耦解决方案算法的分析预测,适用于五轴加工。首先,通过分析伺服驱动器的动态响应到典型的步骤和斜坡信号,因此在伺服环之前预测轮廓误差的预测来预测伺服跟踪误差相对于离散轴位置序列的线性表达。然后,使用泰勒级膨胀和雅比尼亚函数的伪逆矩阵,构建了一个暗示零轮廓误差令人满意的基于最小二乘优化的路径reshaping模型。因此,复杂的非线性轮廓误差预补偿问题被转换为简单的二次编程问题。关于工具取向重塑对刀尖轮廓精度的影响,随后提出了一种简单而有效的同步补偿策略,通过该刀尖和刀具方向轮廓误差均通过任何迭代而减少到接近零。为了解决相邻刀具位置中的轮廓误差补偿的邻居依赖性,还简要介绍了具有线性计算复杂性的渐进解决方案算法。进行了数值模拟和实验室实验,以验证所提出的方法的有效性。

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