Fabrication of Deep Concave Glass Micro Lens by ELID Grinding

Yutaka Yamgata, S. Moriyasu, S. Morita, H. Ohmori, T. Higuchi
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Abstract

Due to the progress in fiber optics, optical storage systems and portable information devices, fabrication technologies for micro optical components becomes more and more important. The fabrication process of micro optical componets especially deep concave glass micro lens is facing a number of diffculties: (1)Since the diameter of the micro optical component is very small and the depth of the surface is large, the grinding wheel must have even samller diameter. (2)In order to obtain optimum cicumference speed, the rotation speed of the grinding wheel becomes extremely high. In order to overcome those problems, inclined grinding wheel can be used to cut the deep concave surface. This method solves the first problem but still extremely high rotation speed is necessary. The authors present a new resolution to those problems using ELID (ElectroLytic In-process Drssing) grinding method. Using ELID grinding, the grinding wheel is continuously dressed during the machininig process and always kept sharpened. This results in a very high quality surface finish even under low circumference speed. Fabrication example of glass micro concave lens (radius:4.6mm) is carried out with small grinding wheel (diameter 5mm) at relatively low rotation speed of 20,000 rpm, which is equivalent to 300m/min circumference speed. Surface roughness of 40nmp-ν and profile accuracy of approximately 1μm was obtained.
ELID磨削加工深凹玻璃微透镜
随着光纤、光存储系统和便携式信息器件的发展,微光器件的制造技术变得越来越重要。微光学元件特别是深凹玻璃微透镜的制造工艺面临着诸多困难:(1)由于微光学元件的直径很小,表面深度又很大,因此砂轮的直径必须更小。(2)为了获得最佳的周长速度,砂轮的转速变得极高。为了克服这些问题,可以采用倾斜砂轮切割深凹面。这种方法解决了第一个问题,但仍然需要极高的旋转速度。作者提出了一种新的解决这些问题的方法,即ELID (electrotic In-process dressing)磨削法。采用ELID磨削,使砂轮在加工过程中不断修整,始终保持锋利。这导致一个非常高质量的表面光洁度,即使在低周长速度。利用直径5mm的小砂轮,以相对较低的转速20000转/分,相当于300米/分钟的圆周速度,进行了玻璃微凹透镜(半径4.6mm)的加工实例。获得了40nmp-ν的表面粗糙度和约1μm的轮廓精度。
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