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Healing of damaged metal by a pulsed high-energy electromagnetic field

机译:脉冲高能电磁场损坏金属愈合

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The processes of defect (intergranular micro-cracks) transformation are investigated for metal samples in a high-energy short-pulsed electromagnetic field. This investigation is based on a numerical coupled model of the impact of high-energy electromagnetic field on the pre-damaged thermal elastic-plastic material with defects. The model takes into account the melting and evaporation of the metal and the dependence of its physical and mechanical properties on the temperature. The system of equations is solved numerically by finite element method with an adaptive mesh using the arbitrary Euler-Lagrange method. The calculations show that the welding of the crack and the healing of micro-defects under treatment by short pulses of the current takes place. For the macroscopic description of the healing process, the healing and damage parameters of the material are introduced. The healing of micro-cracks improves the material healing parameter and reduces its damage. The micro-crack shapes practically do not affect the time-dependence of the healing and damage under the treatment by the current pulses. These changes are affected only by the value of the initial damage of the material and the initial length of the micro-crack. The time-dependence of the healing and the damage is practically the same for all different shapes of micro-defects, provided that the initial lengths of micro-cracks and the initial damages are the same for these different shapes of defects.
机译:研究了高能量短脉冲电磁场​​中的金属样品的缺陷(晶间微裂纹)转化的过程。该研究基于高能电磁场对具有缺陷预损坏热弹性材料的影响的数值耦合模型。该模型考虑了金属的熔化和蒸发以及其物理和机械性能对温度的依赖性。通过使用任意欧拉拉格兰测图方法的自适应网格来数字地通过有限元方法来数值求解方程式。计算表明,通过电流短脉冲处理裂缝和微缺陷治疗的愈合。对于愈合过程的宏观描述,引入了材料的愈合和损伤参数。微裂纹的愈合改善了材料愈合参数并降低了其损坏。微裂纹形状实际上不会影响当前脉冲处理​​下愈合和损伤的时间依赖性。这些变化仅受到材料初始损坏的值和微裂纹的初始长度的影响。对于所有不同形状的微缺陷,愈合和损伤的时间依赖性实际上是相同的,因为这对于这些不同形状的缺陷是相同的微裂纹和初始损坏的初始长度。

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