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Intelligent Models for Predicting the Thrust Force and Perpendicular Vibrations in Microdrilling Processes

机译:预测微钻过程中推力和垂直振动的智能模型

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This paper presents the modeling of thrust force and perpendicular vibrations in micro drilling processes of five commonly used alloys (titanium-based, tungsten-based, aluminum-based and invar). The process was carried out by peck drilling and the influence of five parameters (drill diameter, cutting speed, feed rate, one-step feed length and total drilling length) on the behavior of the thrust force was considered. Some important mechanical and thermal properties of the work piece material were also considered in the model. Two different models were tried: the first one based on artificial neural networks and the second one based on fuzzy inference systems. Outcomes of both approaches were compared to each other and to a multiple regression model. The neural model shows not only a better goodness-of-fit but also a higher generalization capability.
机译:本文介绍了五种常用合金(钛基,钨基,铝基和殷钢)的微钻工艺中的推力和垂直振动的建模。该过程是通过啄钻进行的,并考虑了五个参数(钻头直径,切削速度,进给速度,一步进给长度和总钻进长度)对推力性能的影响。模型中还考虑了工件材料的一些重要的机械和热性能。尝试了两种不同的模型:第一种基于人工神经网络的模型,第二种基于模糊推理系统的模型。将两种方法的结果相互比较,并与多元回归模型进行比较。神经模型不仅显示出更好的拟合优度,而且还具有更高的泛化能力。

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