首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Applicability of an orthogonal cutting slip-line field model for the microscale
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Applicability of an orthogonal cutting slip-line field model for the microscale

机译:正交切削滑移线场模型在微尺度上的适用性

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摘要

Mechanical micromachining is a very flexible and widely exploited process, but its knowledge should still be improved since several incompletely explained phenomena affect the microscale chip removal. Several models have been developed to describe the machining process, but only some of them consider a rounded edge tool, which is a typical condition in micromachining. Among these models, the Waldorf's slip-line field model for the macroscale allows to separately evaluate shearing and ploughing force components in orthogonal cutting conditions; therefore, it is suitable to predict cutting forces when a large ploughing action occurs, as in micromachining. This study aims at demonstrating how this model is suitable also for micromachining conditions. To achieve this goal, a clear and repeatable procedure has been developed for objectively validating its force prediction performance at low uncut chip thickness (less than 50 m) and relatively higher cutting edge radius. The proposed procedure makes the model generally applicable after a suitable and non-extensive calibration campaign. This article shows how calibration experiments can be selected among the available cutting trial database based on the model force prediction capability. Final validation experiments have been used to show how the model is robust to a cutting speed variation even if the cutting speed is not among the model quantities. A suitable set-up, especially designed for microturning conditions, has been used to measure forces and chip thickness. Tests have been performed on 6082-T6 Aluminum alloy with different cutting speeds and different ratios between uncut chip thickness and cutting edge radius.
机译:机械微加工是一个非常灵活且被广泛使用的过程,但是由于一些不完全解释的现象会影响微尺度切屑的去除,因此它的知识仍应提高。已经开发了几种模型来描述加工过程,但是只有其中一些模型考虑了圆角刀,这是微加工中的典型条件。在这些模型中,华尔道夫(Waldorf)的宏观滑移场模型可以分别评估正交切削条件下的剪切力和耕作力分量。因此,如在微机械加工中一样,当发生较大的耕作动作时,适合预测切削力。这项研究旨在证明该模型也适用于微加工条件。为了达到这个目标,已经开发出一种清晰且可重复的程序,以客观地验证其在低未切屑厚度(小于50 m)和相对较高的切削刃半径下的力预测性能。提出的程序使模型在进行适当且不广泛的校准活动后通常可以适用。本文展示了如何基于模型力预测能力在可用的切削试验数据库中选择校准实验。最终的验证实验已被用来显示该模型对切削速度变化的鲁棒性,即使切削速度不在模型数量之内。专门设计用于微车削条件的合适装置已经用于测量力和切屑厚度。已经对6082-T6铝合金进行了测试,这些切削速度不同,未切削切屑厚度和切削刃半径之间的比率也不同。

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