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Chip Geometry based Tool Force Variation Model for Dynamic Error Correction in Diamond Turning

机译:基于切屑几何的刀具动力变化模型,用于金刚石车削中的动态误差校正

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An essential ingredient in the fabrication of diamond turned surfaces is the accurate control of the relative position of the tool and the workpiece. One way to realize this is to use the cutting force information in real-time to infer the resulting surface roughness and to utimately to correct for any dynamic errors. A crucial factor in the use of force information is modeling of the relationship between the force and surface roughness. In this paper, a chip geometry based force model is obtained. The force variation is expressed as a function of the depth-of-cut variation that results from slide vibration and/or spindle relative motion. This force/position model is then used as an admittance relationship in the overall force-based feedback control that utilizes a PZT based, high bandwidth, servo module to minimize the roughness of diamond turned surfaces.
机译:金刚石车削表面制造中的基本要素是精确控制工具和工件的相对位置。实现此目的的一种方法是实时使用切削力信息来推断所得的表面粗糙度,并最终纠正任何动态误差。使用力信息的关键因素是对力和表面粗糙度之间的关系进行建模。在本文中,获得了基于芯片几何形状的力模型。力变化表示为切削深度变化的函数,切削深度变化是由滑动振动和/或主轴相对运动引起的。然后,此力/位置模型在基于力的总体反馈控制中用作导纳关系,该反馈控制利用基于PZT的高带宽伺服模块使金刚石车削表面的粗糙度最小。

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