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Adaptive speed control for waterjet milling in pocket corners

机译:喷水器中的水喷管自适应速度控制

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Milling thin titanium alloy workpieces using conventional manufacturing processes is a delicate operation. During machining, the cutting forces can deform the part, while resulting compressive stresses could actually enhance its mechanical properties. Nevertheless, when parts are both large in size and thin, deformation generated by machining will be incompatible with the geometrical specifications. From this perspective, abrasive waterjet milling offers a suitable alternative solution. Numerous works present the results relating to the depths milled, the surface characteristics and machining strategies when milling pockets. Such studies show that the change of direction when milling closed pockets generates defects arising from the distribution of the jet's energy over the milled surface or the kinematics of the machine. When a pocket corner radius is imposed, changes of direction are made following circular arcs with a radius lower than the specified one. In the present paper, an analysis of the width milled during successive circular trajectories is presented and a predictive model for the depth is adopted. This model is then used to propose a milling method that allows both the imposed radius and tolerance on the pocket depth to be respected.
机译:使用传统制造工艺铣削薄钛合金工件是一种微妙的操作。在加工过程中,切割力可以使部件变形,同时产生压缩应力实际上可以提高其机械性能。尽管如此,当零件均较大并且薄而,通过加工产生的变形将与几何规格不相容。从这个角度来看,磨料水喷射铣削提供合适的替代解决方案。众多作品介绍了与深度研磨的深度铣削,铣削口袋时的表面特性和加工策略有关的结果。这些研究表明,当铣削封闭口袋时,方向的变化会产生从磨削表面上的射流能量的分布产生的缺陷或机器的运动学。当施加口袋角半径时,在半径低于指定的圆弧之后,方向的变化。在本文中,提出了在连续圆形轨迹期间铣削的宽度的分析,并采用了深度的预测模型。然后使用该模型来提出一种铣削方法,其允许施加施加的半径和容差待尊重。

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