High-Precision Grinding of Thin and Large Optical Workpieces with the Kinematic Support

IF 0.9 Q4 AUTOMATION & CONTROL SYSTEMS International Journal of Automation Technology Pub Date : 2024-01-05 DOI:10.20965/ijat.2024.p0039
Takeshi Hashigaya, Masaru Kino, Keisuke Takahashi, Mikio Kurita
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Abstract

In fabrication of a thin and large optical element, grinding with the conventional fixture cannot achieve high precision. When such a thin and large workpiece is tightly fixed to the grinder table, the inconsistency in the form of the contact surfaces and thermal expansion of them produce unexpected stress on the workpiece. After finishing grinding with the fixture, the deformation of the ground surface would happen, accompanied by the release of the stress. This paper proposes a stress-free fixture method by removing over-constraint from the fixture structure. Corrective grinding is executed by calculating the deformation of the workpiece due to the load of the grinding wheel. Furthermore, the fixture enables on-machine measurement by an interferometer above the grinder by replicating the same condition as when the optical element is in use. We achieved a precision of RMS 0.30 µm on a one-meter-size glass ceramic of 60 mm in thickness.
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利用运动支撑对薄型和大型光学工件进行高精度磨削
在制造薄而大的光学元件时,传统夹具无法实现高精度磨削。当如此薄而大的工件被紧紧固定在磨床工作台上时,接触面形状的不一致性及其热膨胀会对工件产生意想不到的应力。使用夹具完成磨削后,磨削表面会发生变形,并伴随着应力的释放。本文通过消除夹具结构中的过度约束,提出了一种无应力夹具方法。通过计算工件因砂轮载荷而产生的变形来执行修正磨削。此外,该夹具通过复制与光学元件使用时相同的条件,实现了在磨床上方使用干涉仪进行机上测量。我们在厚度为 60 毫米、尺寸为一米的玻璃陶瓷上实现了 RMS 0.30 µm 的精度。
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来源期刊
International Journal of Automation Technology
International Journal of Automation Technology AUTOMATION & CONTROL SYSTEMS-
CiteScore
2.10
自引率
36.40%
发文量
96
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