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High-Precision Machining Method of Weak-Stiffness Mirror Based on Fast Tool Servo Error Compensation Strategy

机译:基于快速工具伺服误差补偿策略的高精度加工方法

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摘要

Weak-stiffness mirrors are widely used in various fields such as aerospace and optoelectronic information. However, it is difficult to achieve micron-level precision machining because weak-stiffness mirrors are hard to clamp and are prone to deformation. The machining errors of these mirrors are randomly distributed and non-rotationally symmetric, which is difficult to overcome by common machining methods. Based on the fast tool servo system, this paper proposes a high-precision machining method for weak-stiffness mirrors. Firstly, the clamping error and cutting error compensation strategy is obtained by analyzing the changing process of the mirror surface morphology. Then, by combining real-time monitoring and theoretical simulation, the elastic deformation of the weak-stiffness mirror is accurately extracted to achieve the compensation of the clamping error, and the compensation of the cutting error is achieved by iterative machining. Finally, a weak-stiffness mirror with a thickness of 2.5 mm was machined twice, and the experimental process produced a clamping error with a peak to valley (PV) value of 5.2 µm and a cutting error with a PV value of 1.6 µm. The final machined surface after compensation had a PV value of 0.7 µm. The experimental results showed that the compensation strategy proposed in this paper overcomes the clamping error of the weak-stiffness mirror and significantly reduces cutting errors during the machining process, achieving the high precision machining of a weak-stiffness mirror.
机译:弱刚度镜广泛用于各种领域,例如航空航天和光电信息。然而,难以实现微米级精密加工,因为弱刚度镜很难夹紧并且容易变形。这些镜子的加工误差是随机分布的,并且不旋转对称,这难以通过普通加工方法克服。基于快速工具伺服系统,本文提出了一种用于弱刚度镜的高精度加工方法。首先,通过分析镜面形态的变化过程来获得夹紧误差和切割误差补偿策略。然后,通过组合实时监测和理论模拟,精确地提取弱刚度镜的弹性变形以实现夹紧误差的补偿,并且通过迭代加工实现切割误差的补偿。最后,加工厚度为2.5mm的弱刚度镜两次,实验过程产生了峰值到谷峰(PV)值为5.2μm的夹紧误差,并且PV值为1.6μm的切割误差。补偿后的最终加工表面具有0.7μm的PV值。实验结果表明,本文提出的补偿策略克服了弱刚度镜的夹紧误差,在加工过程中显着降低了切割误差,实现了弱刚度镜的高精度加工。

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