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Geometric- and force-induced errors compensation and uncertainty analysis of rotary axis in 5-axis ultra-precision machine tool

机译:几何和力引起的逆轴在5轴超精密机床中的旋转轴的补偿和不确定度分析

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摘要

In machining of a microstructure on a free form surface, a five-axis ultra-precision machine tool has a great advantage in its flexibility and efficiency compared to a conventional machine tool. However, rotary axes in the five-axis machine tool are sensitive to position errors due to low rigidity. In addition, micro-tools, which are utilized in micro-machining, have low stiffness. The low rigidity and stiffness of the rotary axes and tool introduce geometric errors in machining. Therefore, the position and orientation errors of the rotary axes and the micro-tool must be identified and compensated. Many components contribute to uncertainty of the measurements which will inevitably reduce the reliability of the results. Therefore, it is necessary to analyze the uncertainty of each component. This paper proposed a method to comprehensively identify position-independent geometric errors (PIGEs) and force-induced errors (FIEs) of a system from the rotary axis on the machine to the micro-tool. A simple and practical error model to represent the tool position with respect to the angle of the rotary axis was built. Uncertainty was analyzed to validate the reliability of the proposed method. Cutting experiments were carried out on an AISI 1018 steel and an Al6061 workpiece, and the results were analyzed to verify the proposed model.
机译:在加工在自由形状表面上的微观结构中,与传统的机床相比,五轴超精密机床的灵活性和效率具有很大的优势。然而,由于低刚性,五轴机床中的旋转轴对位置误差敏感。另外,微型工具,用于微加工,具有低刚度。旋转轴和工具的低刚度和刚度引入了加工中的几何误差。因此,必须识别和补偿旋转轴和微工具的位置和取向误差。许多组件有助于测量的不确定性,这将不可避免地降低结果的可靠性。因此,有必要分析每个组分的不确定性。本文提出了一种从机器上的旋转轴上全面地识别独立于独立的几何误差(灰质)和力引起的误差(FIE)和力引起的误差(FIE)到微型工具。构建了一个简单实用的误差模型,以表示相对于旋转轴的角度的刀具位置。分析不确定性以验证所提出的方法的可靠性。在AISI 1018钢和AL6061工件上进行切割实验,并分析结果以验证所提出的模型。

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