...
首页> 外文期刊>Procedia CIRP >Stability analysis in milling by taking into account the influence of forced vibrations on the actual tool-workpiece engagement conditions
【24h】

Stability analysis in milling by taking into account the influence of forced vibrations on the actual tool-workpiece engagement conditions

机译:考虑到强制振动对实际工具工件接合条件的影响,铣削稳定性分析

获取原文
           

摘要

In order to increase the material removal rate in milling, advanced cutting tools with complex geometry are typically applied under extreme cutting conditions which may trigger undesired chatter vibrations of the machining system. Recently some dynamic milling models were proposed in the literature which take into account the higher geometrical complexity of these tools. In these works, the tool-workpiece engagement conditions are computed from a purely geometric-kinematic analysis of the milling operation. Moreoever, they are kept constant throughout the stability analysis, independently from any possible increase of the axial depth of cut. In many cases the experimental validation of the proposed models is incomplete. In this work a novel methodology for assessing milling stability is presented, which is based on the correct linearization of the regenerative perturbations around the actual steady state forced vibrations. When the axial depth of cut is progressively increased, the resulting forced vibrations may cause a variation of each tooth-workpiece contact conditions, thus influencing the process dynamic behavior. This effect is more dominant when the degree of symmetry is poor as in the case of variable pitch cutters, when there is significant teeth runout, and when the average chip thickness is concurrently very small as in peripheral milling. The proposed approach for chatter prediction consists of an incremental linear stability analysis which does progressively adapt to the gradually increasing depth of cut up to the stability border. The concept was successfully verified with experimental cutting tests.
机译:为了提高铣削中的材料去除速率,具有复杂几何形状的先进切削工具通常在极端切削条件下施加,这可能引发加工系统的不希望的颤动振动。最近,在文献中提出了一些动态铣削模型,以考虑到这些工具的较高几何复杂性。在这些作品中,从铣削操作的纯几何运动分析计算工具工件接合条件。在整个稳定性分析中,它们保持恒定,独立于任何可能的轴向切割轴的增加。在许多情况下,所提出的模型的实验验证是不完整的。在这项工作中,提出了一种用于评估铣削稳定性的新方法,这是基于实际稳定强制振动周围的再生扰动的正确线性化。当逐渐增加轴向深度时,所得到的强制振动可能导致每个齿工件接触条件的变化,从而影响工艺动态行为。当对称程度较差时,这种效果更占主导地位,当存在显着的牙齿跳动时,当平均芯片厚度与周边铣削中同时非常小时,当平均芯片厚度非常小时。克隆预测的所提出的方法包括增量线性稳定性分析,其逐渐适应逐渐增加的切割深度达到稳定边界。该概念通过实验切割测试成功验证。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号