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Investigation on milling force of thin-walled workpiece considering dynamic characteristics of workpiece

机译:考虑工件动态特性的薄壁工件铣削力的研究

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The idea of integral calculus is used in traditional milling force prediction methods. In the traditional method, the milling cutter is divided into many micro-elements, the force of each micro-element is calculated, and then the integral summation process is applied to all the micro-elements. In traditional milling force prediction methods, both the workpiece and the tool are assumed to be rigid bodies. In this paper, the method is improved; the Fourier series expansion is used to approximate the periodic milling force and the workpiece is considered as a single degree of freedom spring-damping-vibration system. Through the forced vibration model of periodic force, the vibration displacement of the workpiece is obtained. Then, the radial cutting depth is corrected by the vibration displacement of the workpiece. Finally, the original milling force is corrected with the corrected radial cutting depth. The milling force prediction model based on thin-walled workpiece is obtained through the above process. The model is named as variable-radial-cutting-depth-algorithm (VRCDA). Finally, the accuracy of this model was verified through modal test and milling force acquisition experiments.
机译:整体微积分的思想用于传统的铣削力预测方法。在传统方法中,铣刀分为许多微元件,计算每个微元件的力,然后将积分求和过程应用于所有微元件。在传统的铣削力预测方法中,假设工件和工具都被刚性体。本文改善了该方法;傅里叶串联膨胀用于近似周期铣削力,并且工件被认为是单一自由度的自由度弹簧阻尼振动系统。通过强制振动模型的周期性力,获得工件的振动位移。然后,通过工件的振动位移来校正径向切削深度。最后,用校正的径向切削深度校正原始铣削力。通过上述过程获得基于薄壁工件的研磨力预测模型。该模型被命名为可变径向切削深度算法(VRCDA)。最后,通过模态测试和铣削力采集实验验证了该模型的准确性。

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