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Influence of the die geometry on the hydrogen embrittlement susceptibility of cold drawn wires

机译:模具几何形状对冷拔丝氢脆敏感性的影响

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Residual stress and strain states produced by wire drawing play an essential role in the main cause of failure of cold drawn wires: hydrogen embrittlement (HE), because of the influence of such fields on hydrogen diffusion within the material lattice. Therefore, variations on stress and strain fields, due to changes in the wire drawing process conditions, could modify the service life of these structural components. In this work the influence on HE of two parameters of the wire drawing process (the inlet die angle and the die bearing length) are analyzed by means of diverse numerical simulations by the finite element method (FEM). According to the obtained results, the effects of residual stress and strain fields produced by wire drawing on HE are less dangerous when the inlet die angle decreases or when the bearing length exceeds a characteristic value (wire radius), with a remarkable reduction of the driving forces for hydrogen diffusion. Consequently, wires drawn under such conditions (lower inlet die angle and longer bearing length) will exhibit a lower susceptibility to HE, thereby increasing their resistance to engineering failure.
机译:拉丝产生的残余应力和应变状态在冷拉丝失效的主要原因中起着至关重要的作用:氢脆(HE),因为这种场对氢在材料晶格中的扩散的影响。因此,由于拉丝工艺条件的变化,应力场和应变场的变化可能会改变这些结构部件的使用寿命。在这项工作中,通过有限元方法(FEM)的各种数值模拟,分析了拉丝过程中两个参数(进口模具角度和模具轴承长度)对HE的影响。根据获得的结果,当进模角减小或轴承长度超过特性值(线半径)时,拉丝所产生的残余应力和应变场对HE的影响就不太危险,从而大大降低了驱动力。氢扩散力。因此,在这种条件下(较小的进口模头角和较长的轴承长度)引出的电线对HE的敏感性较低,从而提高了其抵抗工程失败的能力。

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