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Application potential of coarse-grained diamond grinding wheels for precision grinding of optical materials

机译:粗粒金刚石磨轮的应用势,用于光学材料精密研磨

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摘要

Fine-grained resin bonded diamond tools are often used for ultra-precision machining of brittle materials to achieve optical surfaces. A well-known drawback is the high tool wear. Therefore, grinding processes need to be developed exhibiting less wear and higher profitability. Consequently, the presented work focuses on conditioning a mono-layered, coarse-grained diamond grinding wheel with a spherical profile and an average grain size of 301 μm by combining a thermo-chemical and a mechanical-abrasive dressing technique. This processing leads to a run-out error of the grinding wheel in a low-micrometer range. Additionally, the thermo-chemical dressing leads to flattened grains, which supports the generation of hydrostatic pressure in the cutting zone and enables ductile-mode grinding of hard and brittle materials. After dressing, the application characteristics of coarse-grained diamond grinding wheels were examined by grinding optical glasses, fused silica and glass-ceramics in two different kinematics, plunge-cut surface grinding and cross grinding. For plunge-cut surface grinding, a critical depth of cut and surface roughness were determined and for cross-grinding experiments the subsurface damage was analyzed additionally. Finally, the identified parameters for ductile-machining with coarse-grained diamond grinding wheels were used for grinding a surface of 2000 mm~2 in glass-ceramics.
机译:细粒度树脂结合剂金刚石工具通常用于脆性材料的超精密加工,以获得光学表面。一个众所周知的缺点是刀具磨损严重。因此,需要开发出磨损更小、利润更高的研磨工艺。因此,本文的工作集中在通过结合热化学和机械研磨修整技术来调节具有球形轮廓且平均粒度为301μm的单层粗粒金刚石砂轮。这种加工会导致砂轮在较低的微米范围内产生跳动误差。此外,热化学修整会导致晶粒变平,从而支持切割区产生静水压力,并实现硬脆材料的延性磨削。修整后,通过在两种不同的运动学条件下磨削光学玻璃、熔融石英和微晶玻璃,即切入切割面磨削和交叉磨削,研究了粗粒金刚石砂轮的应用特性。对于插入切削表面磨削,确定了临界切削深度和表面粗糙度,对于交叉磨削试验,还分析了次表面损伤。最后,将所确定的粗粒金刚石砂轮延性加工参数用于磨削2000mm~2的微晶玻璃表面。

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