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The cutting of metals via plastic buckling

机译:通过塑料屈曲切割金属

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摘要

The cutting of metals has long been described as occurring by laminar plastic flow. Here we show that for metals with large strain-hardening capacity, laminar flow mode is unstable and cutting instead occurs by plastic buckling of a thin surface layer. High speed in situ imaging confirms that the buckling results in a small bump on the surface which then evolves into a fold of large amplitude by rotation and stretching. The repeated occurrence of buckling and folding manifests itself at the mesoscopic scale as a new flow mode with significant vortex-like components—sinuous flow. The buckling model is validated by phenomenological observations of flow at the continuum level and microstructural characteristics of grain deformation and measurements of the folding. In addition to predicting the conditions for surface buckling, the model suggests various geometric flow control strategies that can be effectively implemented to promote laminar flow, and suppress sinuous flow in cutting, with implications for industrial manufacturing processes. The observations impinge on the foundations of metal cutting by pointing to the key role of stability of laminar flow in determining the mechanism of material removal, and the need to re-examine long-held notions of large strain deformation at surfaces.
机译:长期以来,金属的切割被描述为通过层流塑性流发生。在这里,我们表明,对于具有较大应变硬化能力的金属,层流模式是不稳定的,而是通过薄表面层的塑性屈曲来进行切割。高速原位成像证实了屈曲会在表面上产生一个小的凸起,然后通过旋转和拉伸演变成大幅度的折叠。屈曲和折叠的反复发生在介观尺度上表现为一种新的流动模式,它具有明显的涡旋状成分-连续流动。屈曲模型通过连续流动水平的现象学观察和晶粒变形的微观结构特征以及折叠的测量来验证。除了预测表面屈曲的条件之外,该模型还提出了各种几何流控制策略,这些策略可有效实施以促进层流和抑制切削中的弯曲流,这对工业制造过程具有重要意义。通过指出层流稳定性在确定材料去除机理中的关键作用以及需要重新审查长期存在的表面大应变变形的观念,这些发现影响了金属切削的基础。

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