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Dislocation configuration evolution of FCC alloys induced by Laser Shock Processing

机译:激光冲击加工诱发FCC合金的位错构型演变

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摘要

To investigate the relations between dislocation motion and microstructure evolution of FCC metals during Laser Shock Processing (LSP), and then improve the understanding of the mechanism of laser shock strengthening, aluminium alloy 2A02 and austenitic stainless steel 201 were selected as the representatives, and laser shocked by the, Nd:YAG laser with 1064 nm output wavelength and 20 ns short pulse. The microstructure evolution of test materials induced by laser shock was analysed via Transmission Electronic Microscope (TEM) and Inverse Fast Fourier Transformation (IFFT), and the dislocation configurations and their function were discussed. The experimental results indicated that the increase in both the surface hardness and the residual compressive stress of the laser-shocked test materials can be attributed to the contribution of complex dislocation configurations and nano-crystallisation.
机译:为了研究FCC金属在激光冲击加工(LSP)过程中的位错运动与微观结构演变之间的关系,然后加深对激光冲击强化机理的理解,选择铝合金2A02和奥氏体不锈钢201作为代表,并使用激光Nd:YAG激光震荡,其输出波长为1064 nm,短脉冲为20 ns。通过透射电子显微镜(TEM)和快速傅里叶逆变换(IFFT)分析了激光冲击引起的测试材料的微观结构演变,并讨论了位错构型及其功能。实验结果表明,激光冲击试验材料的表面硬度和残余压缩应力的增加均归因于复杂的位错构型和纳米结晶。

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