• CN:11-2187/TH
  • ISSN:0577-6686

›› 2011, Vol. 47 ›› Issue (9): 139-145.

• 论文 • 上一篇    下一篇

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曲轴非圆磨削中基于差分进化算法的变参数交叉耦合轮廓控制

李静;何永义;方明伦;沈南燕;姚俊   

  1. 上海大学机电工程与自动化学院;上海机床厂有限公司
  • 发布日期:2011-05-05

Cross-coupled Contour Control with Variable Parameters Based on Differential Evolution Algorithm in Crankshaft Non-circular Grinding

LI Jing;HE Yongyi;FANG Minglun;SHEN Nanyan;YAO Jun   

  1. School of Mechatronics Engineering and Automation, Shanghai University Shanghai Machine Tools Works Ltd.
  • Published:2011-05-05

摘要: 曲轴非圆磨削通常采用补偿单轴伺服跟踪误差的方法来提高连杆颈轮廓加工精度,但磨削运动中大惯量砂轮架会严重影响伺服系统的高速响应性,导致单轴伺服跟踪误差补偿轮廓误差效果不理想。因此引入双轴联动交叉耦合控制思想,首先工件旋转轴与砂轮架直线轴的联动运动被近似为两根直线轴联动,并建立曲轴非圆磨削轮廓误差模型,在此模型基础上设计交叉耦合控制系统。为了弥补这种近似对非线性轨迹控制带来的不足,研究分段变参数的交叉耦合控制策略,并以工件轮廓误差最小为目标,采用差分进化(Differential evolution, DE)算法逐段对控制器参数进行优化。仿真实例结合试验表明:在基于DE算法优化的变参数交叉耦合控制下,曲轴非圆磨削理论轮廓精度较普通比例微分和积分控制或交叉耦合控制有所提高。

关键词: 差分进化, 非圆磨削, 交叉耦合, 轮廓误差, 曲轴

Abstract: The servo-lag error is big and hard to be controlled in non-circular grinding owing to the big inertia of grinding carriage and the large acceleration of crankshaft. Therefore, it seems unsatisfactory to enhance the contour precision of crankpin by compensating the servo-lag error of a single axis in non-circular grinding. To obtain a more accurate contour, the cross-coupled control system is designed based on the approximation that the coupled motion between the rotation axis of crankshaft and the linear axis of grinding carriage is simplified as the motion between two linear axes. And then the control strategy that the parameters of cross-coupled control system are variable along the motion path of crankpin non-circular grinding is proposed to make up the deficiency of cross-coupled control in the nonlinear path. Aiming at minimizing the contour error, differential evolution(DE) algorithm is also introduced to optimize the control parameters piecewise. The simulation example with test results demonstrate that the theoretical contour precision of crankpin tracing grinding under the cross-coupled control with variable parameters in comparison with under ordinary proportion integration differentiation control or cross-coupled control.

Key words: Contour error, Crankshaft, Cross-coupled, Differential evolution, Non-circular grinding

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