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华南理工大学2. 日本北見工業大学
收稿日期:2008-12-24,
修回日期:2009-03-04,
网络出版日期:2009-11-25,
纸质出版日期:2009-11-25
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谢晋,韦凤,田牧纯一. 微纳V槽脆/塑性域切削的3D激光检测及评价[J]. 光学精密工程, 2009,17(11):2771-2778
3D Laser measurement and evaluation for brittle / ductile mode cutting of micron/nanometer-scale V-shaped groove[J]. Optics and precision engineering, 2009, 17(11): 2771-2778.
针对微纳米级功能V槽微细加工及评价困难的问题,采用单点金刚石切削方法在超精密机床上对光学玻璃进行V槽的微纳尺度加工,且利用非接触激光检测技术展现V槽的加工形貌。研究目的是分析V槽的微纳米尺度加工的可行性以及找出如何评价V槽加工精度的方法。首先,采用单点金刚石在光学玻璃上进行V槽的微纳尺度切削试验。然后,利用3D激光超精密检测仪器检测加工的V切痕,构建微V槽切痕的形貌图,建立V槽形状误差PV值和V槽尖角圆弧半径的评价模式。最后,分析在微纳尺度加工中切除深度与V槽角度的形成机理以及切削深度对V槽形状误差及其尖角圆弧半径的作用机制。结果表明,在亚微米级尺度加工中存在一个脆/塑性域切除加工状态转变的临界切削深度。在塑性域切削中,金刚石刀具尖角形状可以复制到工件表面,形成深度小于0.386μm、形状误差PV值约0.103μm、尖角半径约为0.182μm的V槽。此外,V槽形状误差PV值在塑性域切除加工中始终保持不变,但在脆性域切除加工中随着切削深度增大而逐渐剧烈加大。而且,V槽尖角圆弧半径在塑性域切削中随着切削深度减小而减小,但为了获得完整的V槽轮廓还需被控制在V槽成型临界界线以下。因此,在处理非接触激光检测的3D数据的基础上,V槽形状误差PV值和尖角圆弧半径可以用来评价V槽微纳尺寸加工的加工精度和微细程度。
Due to the difficulty of measurement and evaluation of machined micron/nanometer-scale V-shaped groove
a single-point diamond turning was employed to machine the V-shaped groove of optic glass in micron/nanometer-scale and then a non-contact laser measure technology was used to analyze the topography of machined V-shaped groove. The aim is to analyze the micron/nanometer-scale machinability of V-shaped groove and find out the evaluation method for its machining precision. First
brittle/ductile mode cutting of V-shaped groove was conducted by using a single-point diamond turning. Then
the machined V-shaped groove was measured by 3D laser meter and then by using the measured data points
the evaluation mode of form error PV and tip arc-radius of V-shaped groove was established. Finally
the effect of sub-micron-scale cutting depth was investigated on the form error PV and the tip arc-radius. The results show that there exists a critical cutting depth transferred from brittle mode cutting to ductile mode cutting in sub-micron-scale space. In ductile mode cutting
the diamond tool tip can be replicated to the workpiece
producing the sub-micron-scale V-shaped groove with the cutting depth of 0.386μm and less
the form error PV of 0.103μm and the tip arc-radius of 0.182μm. In addition
the form error PV of V-shaped groove may maintain a stable value in ductile mode cutting
but greatly increased with the increase of cutting depth in brittle mode cutting; on decreasing the cutting depth
the tip arc-radius decreases in ductile mode cutting and also is reduced to critical borderline and less for the formation of V-shaped groove. It is concluded that the form error PV and the tip arc-radius can be employed to evaluate the machining precision and micro-scale of V-shaped groove by processing 3D data derived from non-contact laser measurement.
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