首页> 外文会议>ASME international manufacturing science and engineering conference;MSEC2008;JSME/ASME international conference of material and processing;ICMP2008 >SPATIALLY RESOLVED CHARACTERIZATION OF GEOMETRICALLY NECESSARY DISLOCATION DEPENDENT DEFORMATION IN MICRO- SCALE LASER SHOCK PEENING
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SPATIALLY RESOLVED CHARACTERIZATION OF GEOMETRICALLY NECESSARY DISLOCATION DEPENDENT DEFORMATION IN MICRO- SCALE LASER SHOCK PEENING

机译:微尺度激光震击中几何必要位移的空间分辨特征

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As the laser spot size in micro-scale laser shock peening is in the order of magnitude of several microns, the anisotropic response of grains will have a dominant influence on its mechanical behavior of the target material. Furthermore, conventional plasticity theory employed in previous studies needs to be rcexamined due to the length scale effect. In the present work, the length scale effects in mieroscale laser shock peening have been investigated. The crystal lattice rotation underneath the shocked surface was determined via Electron Backscatter Diffraction (EBSD). From these measurements, the geometrically necessary dislocations (GND) density that the material contains has been estimated. The yield strength increment was then calculated from the GND distribution by using Taylor model and integrated into each material point of the FEM simulation. Finite element simulations, based on single crystal plasticity, were performed of the process for both with and without considering the GND hardening and the comparison has been conducted.
机译:由于微米级激光冲击喷丸中的激光光斑大小约为几微米,因此晶粒的各向异性响应将对其靶材料的机械性能产生主要影响。此外,由于长度尺度效应,需要重新研究先前研究中使用的常规可塑性理论。在目前的工作中,已经研究了微尺度激光冲击喷丸中的长度尺度效应。受激表面下方的晶格旋转是通过电子背散射衍射(EBSD)确定的。根据这些测量,已经估算出材料所包含的几何上必需的位错(GND)密度。然后,使用泰勒模型从GND分布计算出屈服强度增量,并将其积分到FEM模拟的每个材料点中。在考虑和不考虑GND硬化的情况下,基于单晶可塑性对工艺进行了有限元模拟,并进行了比较。

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