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A Novel Task Coordinate Frame Reduced- Dimension 3-D Contouring Control

机译:一种新颖的任务坐标系三维降维轮廓控制

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摘要

In typical contour-following applications such as computer numerical control (CNC) machining, contouring error characterizes the surface quality of final workpieces. The traditional task coordinate frame (TCF)-based approach transforms the contouring control problem into a 3-D regulation problem along the axes of the local Frenet frame. The contouring error is then controlled indirectly by two decoupled regulation systems. In order to achieve a satisfactory contouring error performance, two sets of control parameters must be tuned for the two systems, respectively. In this paper, a novel TCF (nTCF) is proposed. Given the nearest position from the actual position to the desired (or approximated) contour, one axis is set along the line passing the actual position and the nearest position and another axis is along the advancing direction. The system dynamics in the world Cartesian coordinate frame is transformed into nTCF. The contouring control problem for 3-D contours can be reduced and it locally becomes a 2-D regulation problem, one in contouring direction and the other in advancing direction. By implementing the computed-torque control, two proportional-derivative controllers are integrated to regulate the advancing error and the contouring error, respectively. The contouring error is directly regulated by tuning a single set of control parameter, which becomes much simpler than that in the TCF-based approach, where two sets of control parameters are needed to tune. Experiments on an industrial three-axis glass engraving computer numerical control (CNC) machine show the validity of the proposed nTCF-based approach with two typical 3-D contours. Note to Practitioners-In machining applications, the contouring error is a crucial index with respect to the surface quality of machined parts. In this paper, a novel task coordinate frame (nTCF) is proposed to deal with the 3-D contouring control issue. By transforming the system dynamics from the world Cartesian coordinate frame to nTCF in real-time control, a 3-D contouring control problem is locally reduced and transformed into a 2-D error dynamics regulation problem. In the nTCF, the contouring performance and advancing performance can be decoupled and separately regulated by only two parameters in 3-D contouring control applications. The contouring error can be directly controlled. Moreover, existing contouring error calculation (estimation) techniques, such as linear approximation, circular approximation, or analytical methods, can be readily integrated into the nTCF-based approach. Both analysis and experiments show that the nTCF-based approach is effective and much simpler in parameter tuning for 3-D contouring control.
机译:在典型的仿形应用中,例如计算机数控(CNC)加工,仿形误差表征了最终工件的表面质量。传统的基于任务坐标框架(TCF)的方法沿局部Frenet框架的轴将轮廓控制问题转换为3-D调节问题。然后通过两个解耦的调节系统间接控制轮廓误差。为了获得令人满意的轮廓误差性能,必须分别为两个系统调整两组控制参数。在本文中,提出了一种新颖的TCF(nTCF)。给定从实际位置到所需(或近似)轮廓的最近位置,沿通过实际位置和最近位置的直线设置一个轴,而另一个轴沿前进方向设置。世界笛卡尔坐标系中的系统动力学被转换为nTCF。可以减少3D轮廓的轮廓控制问题,局部地变成2D调节问题,一个在轮廓方向上,另一个在前进方向上。通过执行计算转矩控制,两个比例微分控制器集成在一起,分别调节前进误差和轮廓误差。轮廓误差可通过调整一组控制参数直接进行调节,这比基于TCF的方法要简单得多,在该方法中,需要调整两组控制参数。在工业三轴玻璃雕刻计算机数控(CNC)机器上进行的实验表明,所提出的基于nTCF的方法具有两个典型的3-D轮廓的有效性。执业者注意-在加工应用中,轮廓误差是相对于加工零件表面质量的关键指标。在本文中,提出了一种新颖的任务坐标系(nTCF)来处理3-D轮廓控制问题。通过在实时控制中将系统动力学从世界笛卡尔坐标系转换为nTCF,可以局部减少3D轮廓控制问题并将其转换为2D误差动力学调节问题。在nTCF中,在3-D轮廓控制应用中,轮廓性能和前进性能可以分离,并且仅通过两个参数分别进行调节。轮廓误差可以直接控制。此外,现有的轮廓误差计算(估计)技术(例如线性近似,圆近似或分析方法)可以轻松集成到基于nTCF的方法中。分析和实验均表明,基于nTCF的方法在3-D轮廓控制的参数调整中是有效且简单得多的。

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  • 作者单位

    Shenzhen Engineering Laboratory for Medical Intelligent Cordless Ultrasonic Imaging Technology, School of Mechatronics Engineering and Automation, Harbin Institute of Technology, Shenzhen, China;

    Shenzhen Engineering Laboratory for Medical Intelligent Cordless Ultrasonic Imaging Technology, School of Mechatronics Engineering and Automation, Harbin Institute of Technology, Shenzhen, China;

    Shenzhen Engineering Laboratory for Medical Intelligent Cordless Ultrasonic Imaging Technology, School of Mechatronics Engineering and Automation, Harbin Institute of Technology, Shenzhen, China;

    Shenzhen Engineering Laboratory for Medical Intelligent Cordless Ultrasonic Imaging Technology, School of Mechatronics Engineering and Automation, Harbin Institute of Technology, Shenzhen, China;

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  • 正文语种 eng
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  • 关键词

    Task analysis; System dynamics; Computer numerical control; Three-dimensional displays; Linear approximation;

    机译:任务分析;系统动力学;计算机数控;三维显示;线性逼近;

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