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A theoretical model for the electromagnetic radiation emission during plastic deformation and crack propagation in metallic materials

机译:金属材料塑性变形和裂纹扩展过程中电磁辐射发射的理论模型

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This paper presents a theoretical model for the electromagnetic radiation (EMR) emissions during plastic deformation and crack propagation in metallic materials. It is shown that under an externally applied stress, edge dislocations within the plastic zone ahead of a crack tip form accelerated electric line dipoles which give rise to the EMR emissions. The dynamic motion of these dislocations becomes overdamped, underdamped or critically damped, depending upon the material/microstructural properties such as mass per unit length of dislocation, line tension, damping coefficient, and distance between the dislocation pinning points. The nature of the EMR signals, viz. exponential decay or damped sinusoidal, is decided essentially by these damping characteristics. The EMR emissions are followed by crack propagation in metallic materials. The EMR has a continuous frequency spectrum with a frequency bandwidth ranging from 10~8 to 10~(12) radians s~(-1), depending upon the properties of the metals. Screw dislocations do not contribute to the EMR emissions. The paper also presents some experimental results on the EMR emissions in ASTM B265 grade 2 titanium sheets. The nature (damped sinusoidal and exponential decay), amplitude and frequency of the observed EMR emissions are in conformity with the predictions of the theoretical model.
机译:本文为金属材料塑性变形和裂纹扩展过程中的电磁辐射(EMR)排放提供了理论模型。结果表明,在外加应力作用下,裂纹尖端前塑性区内的边缘错位会形成加速的电偶极子,从而引起EMR辐射。这些位错的动态运动变得过阻尼,欠阻尼或临界阻尼,这取决于材料/微观结构特性,例如位错每单位长度的质量,线张力,阻尼系数以及位错钉扎点之间的距离。 EMR信号的性质,即。指数衰减或正弦阻尼,基本上是由这些阻尼特性决定的。 EMR排放之后,裂纹在金属材料中传播。 EMR具有连续的频谱,其频率带宽范围为10〜8到10〜(12)弧度s〜(-1),具体取决于金属的特性。螺丝错位不会导致EMR排放。本文还介绍了一些有关ASTM B265 2级钛板的EMR排放的实验结果。观测到的EMR发射的性质(阻尼正弦波和指数衰减),幅度和频率与理论模型的预测一致。

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