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The Mechanical Properties in the Vicinity of Grain Boundaries in Ultrafine-Grained and Polycrystalline Materials Studied by Nanoindentations

机译:纳米压痕法研究超细晶粒和多晶材料中晶界附近的力学性能

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The strength of structural materials strongly depends on the structure and properties of grain boundaries. Interfaces usually act as barriers to dislocation motion and therefore strengthen materials with decreasing grain size, quantitatively described by the well-known Hall-Petch relation. However, interfaces in nanocrystalline materials are often covered with impurities or second phases, which may influence the mechanical properties. With nanoindentation testing it is now possible to probe the strength of interfaces like grain boundaries directly on a nanometer scale. Therefore this method was used to investigate the properties in the vicinity of grain boundaries in polycrystalline materials with conventional grain size and in ultrafine-grained metals prepared by equal channel angular pressing (ECAP), where no impurities are introduced during processing. Measurements on an austenitic steel clearly show a decreasing hardness close to the interface opposite to the general expected behavior of strengthening. In this case segregation effects strongly influence the mechanical properties near the boundaries. The nanoindentation investigations on ultrafine-grained Al and Cu show a strong strain rate sensitivity. Inelastic effects are also found between unloading-loading segments during indentations.
机译:结构材料的强度在很大程度上取决于晶界的结构和性质。界面通常会阻碍位错运动,因此会以减小的晶粒尺寸增强材料,这由众所周知的Hall-Petch关系定量地描述。然而,纳米晶体材料中的界面经常被杂质或第二相覆盖,这可能会影响机械性能。通过纳米压痕测试,现在可以直接在纳米级上探测界面(如晶界)的强度。因此,该方法用于研究具有常规晶粒度的多晶材料和通过等通道角挤压(ECAP)制备的超细晶粒金属在晶粒边界附近的性能,在加工过程中没有引入杂质。在奥氏体钢上进行的测量清楚地表明,靠近界面的硬度降低,与一般预期的强化行为相反。在这种情况下,偏析效应强烈影响边界附近的机械性能。对超细晶粒Al和Cu的纳米压痕研究显示出很强的应变速率敏感性。在压痕过程中,在卸荷段之间也发现了非弹性效应。

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