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Dislocation Confinement and Ultimate Strength in Nanoscale Metallic Multilayers

机译:纳米级金属多层脱位限制与极限强度

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In nanostructured metallic multilayers, hardness and strength are greatly enhanced compared to their microstructured counterparts. As layer thickness is decreased, three different regions are frequently observed: the first region shows Hall-Petch behavior; the second region shows an even greater dependence on layer thickness; and the third region exhibits a plateau or softening of hardness and strength. The second and third regions are studied using our discrete dislocation simulation method. This method includes the effects of stress due to lattice mismatch, misfit dislocation substructure, and applied stress on multilayer strength. To do so, we study the propagation of existing threading and interfacial dislocations as the applied stress is increased to the macroyield point. Our results show that in region 2, dislocation propagation is confined to individual layers initially. This "confined layer slip" builds up interfacial content and redistributes stress so that ultimately, the structure can no longer confine slip. The associated macroyield stress in this region depends strongly on layer thickness. In region 3, layers are so thin that confined layer slip is not possible and the macroyield stress reaches a plateau that is independent of layer thickness.
机译:在纳米结构金属多层,与其微观结构的对应物相比,大大提高了硬度和强度。由于层厚度降低,经常观察到三个不同的区域:第一个区域显示霍尔波格行为;第二区域显示对层厚度的更大依赖性;第三个区域表现出高原或软化硬度和强度。使用我们的离散位错仿真方法研究了第二和第三区域。该方法包括由于晶格错配,错位位错子结构和施加应力对多层强度的影响。为此,我们研究现有螺纹和界面位错的传播,因为施加的应力增加到宏yield点。我们的结果表明,在区域2中,脱位传播最初将被限制在各个层上。这种“密闭层滑动”建立了界面内容并重新分配压力,以至于最终,该结构不能再限制滑动。该区域的相关宏座应力在层厚度上强烈取决于层厚度。在区域3中,层如此薄,不可能被限制层滑动,并且宏尤利尔应力达到与层厚度无关的平台。

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