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Dislocation pinning effects induced by nano-precipitates during warm laser shock peening: Dislocation dynamic simulation and experiments

机译:纳米沉淀物在热激光冲击喷丸过程中诱发的位错钉扎效应:位错动力学模拟和实验

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摘要

Warm laser shock peening (WLSP) is a new high strain rate surface strengthening process that has been demonstrated to significantly improve the fatigue performance of metallic components.This improvement is mainly due to the interaction of dislocations with highly dense nanoscale precipitates,which are generated by dynamic precipitation during the WLSP process.In this paper,the dislocation pinning effects induced by the nanoscale precipitates during WLSP are systematically studied.Aluminum alloy 6061 and AISI 4140 steel are selected as the materials with which to conduct WLSP experiments.Multiscale discrete dislocation dynamics (MDDD) simulation is conducted in order to investigate the interaction of dislocations and precipitates during the shock wave propagation.The evolution of dislocation structures during the shock wave propagation is studied.The dislocation structures after WLSP are characterized via transmission electron microscopy and are compared with the results of the MDDD simulation.The results show that nano-precipitates facilitate the generation of highly dense and uniformly distributed dislocation structures.The dislocation pinning effect is strongly affected by the density,size,and space distribution of nano-precipitates.© 2011 American Institute of Physics.
机译:高温激光冲击喷丸(WLSP)是一种新的高应变率表面强化工艺,已被证明可以显着改善金属部件的疲劳性能。这种改善主要归因于位错与高密度纳米级析出物的相互作用,这些析出物是由本文系统地研究了WLSP过程中纳米级析出物引起的位错钉扎效应。选择铝合金6061和AISI 4140钢作为进行WLSP实验的材料。多尺度离散位错动力学(为了研究冲击波传播过程中位错和沉淀的相互作用,进行了MDDD)模拟。研究了冲击波传播过程中位错结构的演变。通过透射电子显微镜对WLSP之后的位错结构进行了表征,并与WLSP进行了比较。 MDDD si的结果结果表明,纳米沉淀物促进了高密度且均匀分布的位错结构的生成。位错钉扎效应受纳米沉淀物的密度,大小和空间分布的强烈影响。©2011美国物理研究所。

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  • 来源
    《Journal of Applied Physics》 |2011年第2期|p.023518.1-023518.8|共8页
  • 作者单位

    School of Industrial Engineering,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Industrial Engineering,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Industrial Engineering,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Materials Science,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Materials Science,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Materials Science,Purdue University,West Lafayette,Indiana 47906,USA,Birck Nanotechnology Center,Purdue University,West Lafayette,Indiana 47906,USA;

    School of Industrial Engineering,Purdue University,West Lafayette,Indiana 47906,USA,Birck Nanotechnology Center,Purdue University,West Lafayette,Indiana 47906,USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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