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A Gouge-Free Tool Axis Reorientation Method for Kinematics Compliant Avoidance of Singularity in 5-Axis Machining

机译:一种自由刨床轴重新定向方法,适用于3轴加工中的奇异性避免奇点

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摘要

When a cutter traverses a region local to the singularity in 5-axis machining, the stability of machine tool motion may be violated and inevitably lead to a reduction in machining quality and accuracy. In this paper, the underlying cause of the singular machine behaviors is first investigated by differentiating tool path motions, on the basis of the tool path motion expressions in part and machine coordinate systems. A further investigation indicates abrupt kinematic changes to be inevitable when the rotary axes approach a singularity. To eliminate such possible singular risks in 5-axis machining, a local tool path modification method is proposed by adjusting the two rotary axes out of a singular configuration. The critical kinematics smoothing and the consequent gouging concerns resulting from reorientation are comprehensively incorporated in the process of singularity avoidance, by means of a novel tool orientation optimization model. Specifically, the algorithm starts with the determination of an appropriate adjustment range in a simple yet effective manner, and then the primary rotary axis is adjusted in a constrained region away from zero, so as to avoid singularity. After that, the second rotary axis is accordingly adjusted, with no gouging requirements being violated. In this way, singularity problems in 5-axis machining are solved, and both the machine axes kinematics and surface gouging errors are under control. Machining simulation and laboratory experiments were conducted to validate he effectiveness of the proposed method.
机译:当切割器穿过局部到5轴加工中的奇点的区域时,可以侵犯机床运动的稳定性并且不可避免地导致加工质量和精度的降低。在本文中,首先通过在部分和机器坐标系中的工具路径运动表达式来研究奇异机器行为的潜在原因。进一步的调查表明,当旋转轴接近奇点时,突然的运动变化是不可避免的。为了在5轴加工中消除这种可能的奇异风险,通过将两个旋转轴从单次结构调节出来,提出了一种本地工具路径改性方法。通过新颖的工具方向优化模型,众所周知,临界运动学平滑和由Reorientation引起的后续吞咽担忧全面地纳入了奇点避免的过程中。具体地,算法以简单但有效的方式确定适当的调整范围,然后将主旋转轴调节在远离零的约束区域中,以避免奇点。之后,相应地调节第二旋转轴,没有侵入要求。以这种方式,解决了5轴加工中的奇点问题,并且机器轴运动学和表面刨丝误差都被控制。进行加工仿真和实验室实验,以验证他提出的方法的有效性。

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