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首页> 外文期刊>Procedia Manufacturing >Radial Throw at the Cutting Edges of Micro-Tools When Using Ultra-High-Speed Micromachining Spindles
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Radial Throw at the Cutting Edges of Micro-Tools When Using Ultra-High-Speed Micromachining Spindles

机译:当使用超高速微加工主轴时,会在微型工具的最尖端发生径向抛掷

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摘要

In this paper, we present an approach to determine the trajectory of the cutting edges of a micro-tool in the presence of radial throw when using ultra-high-speed (UHS) micromachining spindles. When micro tools are rotated, inaccuracies and dynamic response of the tool-collet-spindle assembly cause the microtool axis to displace radially from the average axis of rotation. This displacement is referred to as theradial throwof the axis of rotation. Unlike runout, which defines the total radial displacement of a surface within one cycle of rotation, radial throw depends on the angle of rotation (and thus, the time). The radial throw reflected at each cutting edge causes the cutting edge trajectory to vary from the ideal trajectory, which is a circle with a diameter equal to the tool diameter. As such, the radial throw at the cutting edges critically affects the attainable dimensional accuracy and surface quality, as well as the micromachining forces. For this reason, accurate determination of effective radial throw of micro-tools is important for practical applications and process-modeling efforts. This paper devises an approach for accurate measurement of radial throw at the cutting edges of micro-tools when using UHS spindles. The approach involves (1) a mathematical framework to determine the trajectory of the cutting edges from measurements of the radial throw at two locations on the tool shank, and (2) an experimental method, based on non-contact displacement measurements, for simultaneous radial throw measurements on the tool shank at two mutually-perpendicular radial directions. The approach is experimentally validated by comparing the predicted and measured radial throw at the tool tip using a micro-tool blank rotated on an UHS spindle at 120,000 rpm. The results indicate that the deviations between the predicted and measured radial throw magnitude and orientation are less than 1% and 0.1 deg., respectively. Subsequently, the validated approach is used to determine tool-tip radial throw of a commercially-available micro-endmill rotated on the same spindle at different spindle speeds. It is concluded that the presented approach provides an effective means for accurate determination of the speed-dependent radial throw at the cutting edges of micro tools towards enhancing the process performance.
机译:在本文中,我们提出了一种在使用超高速(UHS)微加工主轴时,在存在径向抛物的情况下确定微型工具切削刃轨迹的方法。当旋转微型工具时,工具-夹头-主轴组件的不精确性和动态响应会导致微型工具的轴从平均旋转轴径向移动。该位移称为旋转轴的径向抛掷。与跳动不同,跳动定义了一个旋转周期内表面的总径向位移,而径向抛掷则取决于旋转角度(因此取决于时间)。在每个切削刃处反射的径向抛掷导致切削刃轨迹与理想轨迹有所不同,理想轨迹是理想直径,该直径等于刀具直径。这样,在切削刃处的径向抛掷严重影响了可获得的尺寸精度和表面质量以及微加工力。因此,准确确定微型工具的有效径向行程对于实际应用和过程建模工作很重要。本文设计了一种在使用UHS主轴时精确测量微型刀具切削刃上的径向行程的方法。该方法涉及(1)通过从工具柄上两个位置处的径向行程测量确定切削刃轨迹的数学框架,以及(2)基于非接触位移测量的同时进行径向运动的实验方法在两个相互垂直的径向方向上对刀柄进行测量。通过使用在UHS主轴上以120,000 rpm旋转的微型工具坯料比较预测和测量到的刀尖处的径向行程,该方法在实验上得到了验证。结果表明,预测的和测量的径向投射幅度和方向之间的偏差分别小于1%和0.1度。随后,经过验证的方法可用于确定在同一个主轴上以不同的主轴转速旋转的商用微型立铣刀的刀尖径向行程。结论是,所提出的方法提供了一种有效的手段,用于精确确定在微型工具的切削刃处的速度相关的径向行程,以增强加工性能。

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